Files
littlefs/tests/test_mtree.toml
T
Christopher Haster 11c30929e9 Started adopting lazy attr encoding
The idea here is to move as much attr encoding logic as possible into
lfsr_rbyd_appendrattr_, so we don't encode most attrs until the last
minute, right before we write the tag+data to disk.

This has some pretty big theoretical benefits:

- Deduplicates encoding logic, so most attrs will only have a single
  lfsr_data_from* call in the entire system.

  This saves code size used for function calls, stack allocations, etc.

- In theory, _significantly_ better stack usage.

  The main downside with eager encoding is that we need a buffer to
  hold the encoding, and this buffer needs to stay allocated while all
  of the commit machinery does its work.

  This ends up stacking when any low-level attr buffers in
  lfsr_btree_commit/lfsr_mdir_commit/etc, even though we don't _really_
  need all of these attrs encoded at the same time.

  Heck, we don't even need all of the attrs in the same _commit_ to be
  encoded at the same time.

  Lazily encoding avoids all of this.

- It's actually a nicer internal API, and means less risk we lose/
  misallocate one of the encoding buffers.

The main downside is this makes attr encodings less gc-able. However, so
far it seems like you need most tags the moment you try to write to the
filesystem, and unwanted code costs can be worked around by allowing
more code to be conditionally compiled-out (at a testing cost).

This also means we don't know the actual on-disk attr size until we're
writing attrs out to disk. Fortunately, we've ended up relying on attr
size less than I thought we would. We still need it for shrub estimates,
but we can use the worst-case encoding size (LFSR_BPTR_DSIZE) there.

---

To start, this adopts lazy attr encoding for most of the obvious/
less-involved attrs:

- LFSR_TAG_BSHRUB ---> lfsr_data_fromshrub
- LFSR_TAG_BTREE  -+-> lfsr_data_frombtree
- LFSR_TAG_MTREE  -'
- LFSR_TAG_MROOT  -+-> lfsr_data_frommptr
- LFSR_TAG_MDIR   -'
- LFSR_TAG_ECKSUM ---> lfsr_data_fromecksum

Of interesting note is LFSR_TAG_BSHRUB. These changes actually make
shrub trunk encoding less of a special case, which _must_ be lazily
encoded due to last minute shrub changes caused by mdir compactions,
relocations, etc. This lets us drop the unique LFSR_TAG_SHRUBTRUNK
handling.

Though it does risk bugs if a future refactor ever reverts to eager
encoding... I've tried to highlight this with comments around
LFSR_TAG_BSHRUB's encoding.

These changes also required moving a significant number of the
LFSR_*_DSIZE macros around so they are declared before
lfsr_rbyd_appendrattr_. This is unfortunate as it moves them farther
away from from the related lfsr_data_from* implementations, but as far
as I'm aware there's no way around this.

We also need to _not_ lazily encode when an attr is in the concatenated-
data form (count < 0), or else this breaks mdir compaction. This has the
interesting side-effect of still allowing eager encoding with
LFSR_DATA_BUF, which, while less efficient, is very useful for our
tests.

---

So far, code/stack changes look promising:

           code          stack          ctx
  before: 36280           2576          636
  after:  35848 (-1.2%)   2504 (-2.8%)  636 (+0.0%)
2025-02-11 02:51:39 -06:00

4776 lines
169 KiB
TOML

# Test the high-level metadata tree in the core of littlefs
after = ['test_rbyd', 'test_btree']
# maximize lookahead buffer, we don't actually gc so we only get one pass
# of the disk for these tests
defines.LOOKAHEAD_SIZE = 'BLOCK_COUNT / 8'
# test with and without revision count noise
defines.NOISY = [false, true]
defines.F_FLAGS = '''
((NOISY) ? LFS_IFDEF_NOISY(LFS_F_NOISY, -1) : 0)
'''
defines.M_FLAGS = '''
((NOISY) ? LFS_IFDEF_NOISY(LFS_M_NOISY, -1) : 0)
'''
if = 'LFS_IFDEF_NOISY(true, !NOISY)'
# test a single mroot
[cases.test_mtree_mroot]
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfsr_unmount(&lfs) => 0;
'''
# test a single mroot with attributes
[cases.test_mtree_mroot_rattrs]
defines.N = [1, 3]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(
LFSR_TAG_ATTR(i), 0,
LFSR_DATA_BUF(&(uint8_t){'a'+(i % 26)}, 1)))) => 0;
}
for (lfs_size_t i = 0; i < N; i++) {
lfsr_data_t data;
uint8_t buffer[1];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(i), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+(i % 26)}, 1) == 0);
}
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_data_t data;
uint8_t buffer[1];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(i), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+(i % 26)}, 1) == 0);
}
lfsr_unmount(&lfs) => 0;
'''
# test a single mroot with forced compaction
[cases.test_mtree_mroot_compact]
defines.N = [1, 3]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(
LFSR_TAG_ATTR(i), 0,
LFSR_DATA_BUF(&(uint8_t){'a'+(i % 26)}, 1)))) => 0;
}
for (lfs_size_t i = 0; i < N; i++) {
lfsr_data_t data;
uint8_t buffer[1];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(i), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+(i % 26)}, 1) == 0);
}
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_data_t data;
uint8_t buffer[1];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(i), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+(i % 26)}, 1) == 0);
}
lfsr_unmount(&lfs) => 0;
'''
# test a single mroot with many commits
[cases.test_mtree_mroot_many_commits]
defines.N = [5, 5000]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(
LFSR_TAG_ATTR(1), 0,
LFSR_DATA_BUF(&(uint8_t){'a'+(i % 26)}, 1)))) => 0;
lfsr_data_t data;
uint8_t buffer[4];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 4) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+(i % 26)}, 1) == 0);
}
lfsr_data_t data;
uint8_t buffer[4];
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 4) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+((N-1) % 26)}, 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 4) => 1;
assert(memcmp(buffer, &(uint8_t){'a'+((N-1) % 26)}, 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
## Splitting operations ##
# specific split corner cases
[cases.test_mtree_uninline]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create a 2 large rattrs that needs to be uninlined
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_uninline_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
# try creating a range of entries that may or may not split our mtree
[cases.test_mtree_split_many]
defines.N = [5, 10, 20, 40, 80, 160, 320]
defines.FORCE_COMPACTION = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// create entries
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
mdir.mid += 1;
if (lfsr_mid_rid(&lfs, mdir.mid) >= (lfsr_srid_t)mdir.rbyd.weight) {
lfsr_mtree_lookup(&lfs, lfsr_mid_bid(&lfs, mdir.mid) + 1,
&mdir) => 0;
}
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
mdir.mid += 1;
if (lfsr_mid_rid(&lfs, mdir.mid) >= (lfsr_srid_t)mdir.rbyd.weight) {
lfsr_mtree_lookup(&lfs, lfsr_mid_bid(&lfs, mdir.mid) + 1,
&mdir) => 0;
}
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
lfsr_unmount(&lfs) => 0;
'''
# create random entries
[cases.test_mtree_split_fuzz]
defines.N = [5, 10, 20, 40, 80, 160]
defines.FORCE_COMPACTION = [false, true]
defines.SEED = 'range(100)'
fuzz = 'SEED'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
bool sim[N];
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = false;
}
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % N;
// update sim
sim[x] = true;
// update mtree
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", x);
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (!err) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
// double check
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
lfsr_unmount(&lfs) => 0;
'''
## Dropping operations ##
# specific drop corner cases
[cases.test_mtree_drop]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 0);
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_compact]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
// force mdir to compact while we're removing
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 0);
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_uninline_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
// force mdir to compact while we're removing
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 2);
// assert split/drop worked out
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_split_l]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
// force mdir to compact while we're removing
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 1);
// assert split/drop worked out
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert split/drop worked out
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_split_r]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
// force mdir to compact while we're removing
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 1);
// assert split/drop worked out
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert split/drop worked out
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_fuzz]
defines.N = [5, 10, 20, 40, 80, 160]
defines.FORCE_COMPACTION = [false, true]
defines.SEED = 'range(100)'
fuzz = 'SEED'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
bool sim[N];
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = false;
}
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % N;
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", x);
// choose to create or delete
uint8_t op = TEST_PRNG(&prng) % 2;
// create
if (op == 0) {
// update sim
sim[x] = true;
// update mtree
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (!err) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
// double check
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
// delete
} else {
// update sim
sim[x] = false;
// update mtree
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
}
}
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
lfsr_unmount(&lfs) => 0;
'''
## Relocation operations ##
# specific relocation corner cases
[cases.test_mtree_relocate]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create a 2 large rattrs that needs to be uninlined
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// force mdir to compact twice, this should relocate
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(4), 0, LFSR_DATA_BUF("d", 1)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(5), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(5), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(5), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_l]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// force mdir to compact twice, this should relocate
memset(buffer+1, 'a', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("d", 1)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_r]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// force mdir to compact twice, this should relocate
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("d", 1)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// prepare mroot with an entry
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("b", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our entry is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert that our rattr is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_extend_twice]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
# force our block to compact by setting prog_size=block_size, we don't have
# an easy way to force the intermediary mroots to compact otherwise
defines.PROG_SIZE = 'BLOCK_SIZE'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// prepare mroot with an entry
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("b", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// force mroot to compact four times, this should relocate the mroot
// twice, forcing a second mroot extension
old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("d", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(4), 0, LFSR_DATA_BUF("e", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(5), 0, LFSR_DATA_BUF("f", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(6), 0, LFSR_DATA_BUF("g", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our rattr is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(5), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'f');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(6), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'g');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert that our rattr is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(5), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'f');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(6), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'g');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_mroot]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// prepare mroot with an entry
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("b", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// force mroot to compact twice again, this should relocate the mroot
old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("d", 1)))) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(4), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our entry is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert that our rattr is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(4), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// setup mroot to compact and relocate on next commit
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_t old_mroot = lfs.mroot;
// force mdir to compact twice, this should relocate
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("d", 1)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("e", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert mroot relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_split_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// setup mroot to compact and relocate on next commit
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_t old_mroot = lfs.mroot;
// force mdir to compact twice, this should relocate
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("e", 1)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("f", 1)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert mroot relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'f');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'd');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'e');
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'f');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// setup mroot to compact and relocate on next commit
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_t old_mroot = lfs.mroot;
// remove an entry, forcing the mdir to be dropped
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
// force mdir to compact twice, this should relocate
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF("d", 1)))) => 0;
// force mdir to compact while we're removing
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 0);
// assert mroot relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was dropped
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_uninline_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// force mroot to compact once, so the second compact below will
// trigger a relocation
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfsr_data_t data;
// create a 2 large rattrs that needs to be uninlined
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(2), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// force mroot to compact, this should both uninline and relocate
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(3), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mroot relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(2), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(3), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_uninline_split_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// force mroot to compact once, so the second compact below will
// trigger a relocation
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact, this should both split and relocate
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF("c", 1)))) => 0;
// assert mroot relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 1) => 1;
assert(buffer[0] == 'c');
lfsr_unmount(&lfs) => 0;
'''
# this fuzz covers a lot of configurations
[cases.test_mtree_relocate_fuzz]
defines.N = [5, 10, 20, 40]
defines.FORCE_COMPACTION = [false, true]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.SEED = 'range(500)'
fuzz = 'SEED'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
bool sim[N];
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = false;
}
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % N;
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", x);
// choose to create or delete
uint8_t op = TEST_PRNG(&prng) % 2;
// create
if (op == 0) {
// update sim
sim[x] = true;
// update mtree
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (!err) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
// double check
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
// update
} else if (op == 1) {
// sim update is a noop
// update mtree
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
// we can't really change metadata names, but commits still
// trigger writes to the mdir
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, 0, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
// double check
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
// delete
} else {
// update sim
sim[x] = false;
// update mtree
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
}
}
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
lfsr_unmount(&lfs) => 0;
'''
## Opened mdir tracking ##
[cases.test_mtree_opened]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "c", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0c", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// insert a new entry, this should update our neighbors
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0b", 2)))) => 0;
assert(mdir.rbyd.weight == 4);
lfsr_data_t data;
// assert our entry was created
uint8_t buffer[2];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, 2) => 2;
assert(buffer[1] == 'b');
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "c", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_remove_l]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0b", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// try removing left neighbor
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 2);
// assert neighbor was removed
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_remove_r]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0b", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// try removing right neighbor
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 2);
// assert neighbor was removed
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_uninline_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0d", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "e", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0e", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "e", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_extend]
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0b", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our neighbors were updated correctly
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "b", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_relocate_l]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0d", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// force mdir to compact twice, this should relocate
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_relocate_r]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0d", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// force mdir to compact twice, this should relocate
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_t old_mdir = mdir;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "d", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_middle_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "f", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0f", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'e', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add _another_ large entry to the middle mdir, forcing another split
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (4 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "f", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_opened_middle_drop]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// setup our neighbors
lfsr_omdir_t left = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&left.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &left.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(left.mdir.rbyd.weight == 2);
lfsr_omdir_open(&lfs, &left);
lfsr_omdir_t right = {.flags=0};
lfsr_mtree_namelookup(&lfs, 0, "e", 1,
&right.mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &right.mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0e", 2)))) => 0;
assert(right.mdir.rbyd.weight == 3);
lfsr_omdir_open(&lfs, &right);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'b', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
memset(buffer+1, 'd', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 5);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 4);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now remove the middle entry, forcing a drop
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_RM, -1, LFSR_DATA_NULL()))) => 0;
assert(mdir.rbyd.weight == 0);
// assert mdir was dropped correctly
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our neighbors were updated correctly
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
assert(left.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&left.mdir, &mdir) == 0);
assert(left.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(left.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_mtree_namelookup(&lfs, 0, "e", 1,
&mdir, NULL, NULL) => 0;
assert(right.mdir.mid == mdir.mid);
assert(lfsr_mdir_cmp(&right.mdir, &mdir) == 0);
assert(right.mdir.rbyd.trunk == mdir.rbyd.trunk);
assert(right.mdir.rbyd.cksum == mdir.rbyd.cksum);
lfsr_omdir_close(&lfs, &left);
lfsr_omdir_close(&lfs, &right);
lfsr_unmount(&lfs) => 0;
'''
## mtree traversal ##
# test specific corner cases
[cases.test_mtree_traversal]
defines.CKMETA = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// insert at least one entry
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(mdir.rbyd.weight == 2);
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8] |= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8] |= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8] |= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
lfsr_data_t data;
// and the tree should still work
// assert that our entry is still in the mtree
uint8_t buffer[256];
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 2;
assert(memcmp(buffer, "\0a", 2) == 0);
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert that our entry is still in the mtree
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 2;
assert(memcmp(buffer, "\0a", 2) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_uninline]
defines.CKMETA = [false, true]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create a 2 large rattrs that needs to be uninlined
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_ATTR(1), 0, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8] |= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8] |= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8] |= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined
assert(lfs.mtree.weight == (1 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our rattrs are still in the mroot/mtree
lfsr_mdir_lookup(&lfs, &lfs.mroot, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'a');
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_ATTR(1), &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[0] == 'b');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_uninline_split]
defines.CKMETA = [false, true]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8] |= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8] |= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8] |= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_split]
defines.CKMETA = [false, true]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
memset(buffer+1, 'b', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 3);
// force mroot to compact
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfs.mtree.weight == (2 << lfs.mdir_bits));
// assert mroot now has no entries
assert(lfs.mroot.rbyd.weight == 0);
// now add another large entry to an mdir, forcing a split
memset(buffer+1, 'c', SIZE-1);
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mdir to compact
mdir.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8] |= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8] |= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8] |= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'c');
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert mdir was split correctly
assert(lfs.mtree.weight == (3 << lfs.mdir_bits));
// assert mroot still has no entries
assert(lfs.mroot.rbyd.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_mtree_lookup(&lfs, (1 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'b');
lfsr_mtree_lookup(&lfs, (2 << lfs.mdir_bits)+0, &mdir) => 0;
assert(mdir.rbyd.weight == 1);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'c');
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_extend]
defines.CKMETA = [false, true]
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// insert at least one entry
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF("\0a", 2)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8]
|= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8]
|= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8]
|= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
lfsr_data_t data;
// and the tree should still work
// assert that our entry is still in the mtree
uint8_t buffer[256];
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 2;
assert(memcmp(buffer, "\0a", 2) == 0);
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// assert that our entry is still in the mtree
lfsr_mtree_namelookup(&lfs, 0, "a", 1,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 2;
assert(memcmp(buffer, "\0a", 2) == 0);
lfsr_unmount(&lfs) => 0;
'''
# larger traversal tests
[cases.test_mtree_traversal_many]
defines.N = [5, 10, 20, 40, 80, 160, 320]
defines.CKMETA = [false, true]
defines.FORCE_COMPACTION = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
// create entries
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// test that we can traverse the tree, keeping track of all blocks we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8]
|= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8]
|= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8]
|= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
mdir.mid += 1;
if (lfsr_mid_rid(&lfs, mdir.mid) >= (lfsr_srid_t)mdir.rbyd.weight) {
lfsr_mtree_lookup(&lfs, lfsr_mid_bid(&lfs, mdir.mid) + 1,
&mdir) => 0;
}
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
mdir.mid += 1;
if (lfsr_mid_rid(&lfs, mdir.mid) >= (lfsr_srid_t)mdir.rbyd.weight) {
lfsr_mtree_lookup(&lfs, lfsr_mid_bid(&lfs, mdir.mid) + 1,
&mdir) => 0;
}
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_fuzz]
defines.N = [5, 10, 20, 40, 80, 160]
defines.CKMETA = [false, true]
defines.FORCE_COMPACTION = [false, true]
defines.SEED = 'range(100)'
fuzz = 'SEED'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
bool sim[N];
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = false;
}
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % N;
// update sim
sim[x] = true;
// update mtree
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", x);
lfsr_mdir_t mdir;
int err = lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL);
assert(!err || err == LFS_ERR_NOENT);
if (!err) {
continue;
}
// force a compaction?
if (FORCE_COMPACTION) {
lfs.mroot.rbyd.eoff = -1;
mdir.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(name, 4)))) => 0;
lfsr_data_t data;
// double check
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
}
// test that we can traverse the tree, keeping track of all blocks
// we see
uint8_t *seen = malloc((BLOCK_COUNT+7)/8);
memset(seen, 0, (BLOCK_COUNT+7)/8);
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY
| ((CKMETA) ? LFS_T_CKMETA : 0));
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
// keep track of seen blocks
seen[mdir->rbyd.blocks[1] / 8]
|= 1 << (mdir->rbyd.blocks[1] % 8);
seen[mdir->rbyd.blocks[0] / 8]
|= 1 << (mdir->rbyd.blocks[0] % 8);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
// keep track of seen blocks
seen[rbyd->blocks[0] / 8]
|= 1 << (rbyd->blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t clobber_buf[BLOCK_SIZE];
memset(clobber_buf, 0xcc, BLOCK_SIZE);
for (lfs_block_t block = 0; block < BLOCK_COUNT; block++) {
if (!(seen[block / 8] & (1 << (block % 8)))) {
CFG->erase(CFG, block) => 0;
CFG->prog(CFG, block, 0, clobber_buf, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// try looking up each entry
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_data_t data;
uint8_t buffer[256];
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
// check things stay sane after remount
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
// try looking up each entry
lfsr_mtree_lookup(&lfs, 0, &mdir) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_BOOKMARK, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 1;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
name[0] = '\0';
sprintf(name+1, "%03x", i);
if (sim[i]) {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => 0;
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, sizeof(buffer)) => 4;
assert(memcmp(buffer, name, 4) == 0);
} else {
lfsr_mtree_namelookup(&lfs, 0, (const char*)name+1, 3,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
}
}
lfsr_unmount(&lfs) => 0;
'''
## Cycle detection? ##
# test that our cycle detector at least works in common cases
[cases.test_mtree_traversal_mroot_cycle]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_RATTRS(
LFSR_RATTR__(
LFSR_TAG_MROOT, 0,
LFSR_MPTR_MROOTANCHOR(), LFSR_MPTR_DSIZE))) => 0;
// technically, cycle detection only needs to work when we're validating
lfsr_traversal_t t;
lfsr_traversal_init(&t,
LFS_T_MTREEONLY | LFS_T_CKMETA);
for (lfs_block_t i = 0;; i++) {
// assert that we detect the cycle in a reasonable number of iterations
assert(i < 2*BLOCK_COUNT);
lfsr_tag_t tag;
lfsr_bptr_t bptr;
int err = lfsr_mtree_traverse(&lfs, &t,
&tag, &bptr);
assert(!err || err == LFS_ERR_CORRUPT);
if (err == LFS_ERR_CORRUPT) {
break;
}
if (tag == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)bptr.data.u.buffer;
printf("traversal: 0x%x mdir 0x{%x,%x}\n",
tag,
mdir->rbyd.blocks[0],
mdir->rbyd.blocks[1]);
} else if (tag == LFSR_TAG_BRANCH) {
lfsr_rbyd_t *rbyd = (lfsr_rbyd_t*)bptr.data.u.buffer;
printf("traversal: 0x%x btree 0x%x.%x\n",
tag,
rbyd->blocks[0], rbyd->trunk);
} else {
// this shouldn't happen
printf("traversal: 0x%x\n", tag);
assert(false);
}
}
lfsr_unmount(&lfs) => 0;
'''
## Truncate mroot tests ##
# test some that some tricky truncated tags are rejected correctly
[cases.test_mtree_truncated_tag]
defines.OVERFLOW = [-3, -2, -1, 0, 1, 2, 3, 4, 5]
in = 'lfs.c'
code = '''
// create a malformed mroot
uint8_t buffer[BLOCK_SIZE];
// fill with zeros to make parity checks easier
memset(buffer, 0, BLOCK_SIZE);
memcpy(&buffer[0], "evil", 4);
uint32_t cksum = lfs_crc32c(0, &buffer[0], 4);
// make sure we're not caught by magic checks
buffer[4+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_MAGIC >> 8);
buffer[4+1] = (uint8_t)(LFSR_TAG_MAGIC >> 0);
buffer[4+2] = 0;
buffer[4+3] = 8;
memcpy(&buffer[4+4], "littlefs", 8);
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[4], 4+8);
// append a tag that overflows our block
lfs_size_t size = BLOCK_SIZE - (16+7) + OVERFLOW;
buffer[16+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_ATTR >> 8);
buffer[16+1] = (uint8_t)(LFSR_TAG_ATTR >> 0);
buffer[16+2] = 0;
buffer[16+3] = 0x80 | (0x7f & (size >> 0));
buffer[16+4] = 0x80 | (0x7f & (size >> 7));
buffer[16+5] = 0x80 | (0x7f & (size >> 14));
buffer[16+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// make next tag look valid to make errors look more likely
if (OVERFLOW < 0) {
buffer[BLOCK_SIZE + OVERFLOW] = ((uint8_t)lfs_parity(cksum) << 7);
}
// write to both mroot blocks
for (int i = 0; i < 2; i++) {
CFG->erase(CFG, i) => 0;
CFG->prog(CFG, i, 0, buffer, BLOCK_SIZE) => 0;
}
// try to mount, this should fail
lfs_t lfs;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => LFS_ERR_CORRUPT;
'''
[cases.test_mtree_truncated_cksum]
defines.OVERFLOW = [1, 2, 3, 4]
defines.TRUNCATED_SIZE = [false, true]
in = 'lfs.c'
code = '''
// create a malformed mroot
uint8_t buffer[BLOCK_SIZE];
// fill with zeros to make parity checks easier
memset(buffer, 0, BLOCK_SIZE);
memcpy(&buffer[0], "evil", 4);
uint32_t cksum = lfs_crc32c(0, &buffer[0], 4);
// make sure we're not caught by magic checks
buffer[4+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_MAGIC >> 8);
buffer[4+1] = (uint8_t)(LFSR_TAG_MAGIC >> 0);
buffer[4+2] = 0;
buffer[4+3] = 8;
memcpy(&buffer[4+4], "littlefs", 8);
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[4], 4+8);
// append a tag for padding
lfs_size_t size = BLOCK_SIZE - (16+7) - (7+4) + OVERFLOW;
buffer[16+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_ATTR >> 8);
buffer[16+1] = (uint8_t)(LFSR_TAG_ATTR >> 0);
buffer[16+2] = 0;
buffer[16+3] = 0x80 | (0x7f & (size >> 0));
buffer[16+4] = 0x80 | (0x7f & (size >> 7));
buffer[16+5] = 0x80 | (0x7f & (size >> 14));
buffer[16+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// append a truncated cksum tag
lfs_off_t off = BLOCK_SIZE - (7+4) + OVERFLOW;
size = (TRUNCATED_SIZE) ? 4-OVERFLOW : 4;
buffer[off+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_CKSUM >> 8);
buffer[off+1] = (uint8_t)(LFSR_TAG_CKSUM >> 0);
buffer[off+2] = 0;
buffer[off+3] = 0x80 | (0x7f & (size >> 0));
buffer[off+4] = 0x80 | (0x7f & (size >> 7));
buffer[off+5] = 0x80 | (0x7f & (size >> 14));
buffer[off+6] = 0x00 | (0x7f & (size >> 21));
// write to both mroot blocks
for (int i = 0; i < 2; i++) {
CFG->erase(CFG, i) => 0;
CFG->prog(CFG, i, 0, buffer, BLOCK_SIZE) => 0;
}
// try to mount, this should fail
lfs_t lfs;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => LFS_ERR_CORRUPT;
'''
[cases.test_mtree_truncated_ecksum]
defines.OVERFLOW = [-3, -2, -1, 0, 1, 2, 3, 4, 5]
defines.TRUNCATED_SIZE = [false, true]
in = 'lfs.c'
code = '''
// create a malformed mroot
uint8_t buffer[BLOCK_SIZE];
// fill with zeros to make parity checks easier
memset(buffer, 0, BLOCK_SIZE);
memcpy(&buffer[0], "evil", 4);
uint32_t cksum = lfs_crc32c(0, &buffer[0], 4);
// make sure we're not caught by magic checks
buffer[4+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_MAGIC >> 8);
buffer[4+1] = (uint8_t)(LFSR_TAG_MAGIC >> 0);
buffer[4+2] = 0;
buffer[4+3] = 8;
memcpy(&buffer[4+4], "littlefs", 8);
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[4], 4+8);
// append a tag for padding
lfs_size_t size = BLOCK_SIZE - (16+7) - (7+5) + OVERFLOW;
buffer[16+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_ATTR >> 8);
buffer[16+1] = (uint8_t)(LFSR_TAG_ATTR >> 0);
buffer[16+2] = 0;
buffer[16+3] = 0x80 | (0x7f & (size >> 0));
buffer[16+4] = 0x80 | (0x7f & (size >> 7));
buffer[16+5] = 0x80 | (0x7f & (size >> 14));
buffer[16+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// append a truncated ecksum tag
lfs_off_t off = BLOCK_SIZE - (7+5) + OVERFLOW;
size = (TRUNCATED_SIZE) ? 5-lfs_smax(OVERFLOW, 0) : 5;
buffer[off+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_ECKSUM >> 8);
buffer[off+1] = (uint8_t)(LFSR_TAG_ECKSUM >> 0);
buffer[off+2] = 0;
buffer[off+3] = 0x80 | (0x7f & (size >> 0));
buffer[off+4] = 0x80 | (0x7f & (size >> 7));
buffer[off+5] = 0x80 | (0x7f & (size >> 14));
buffer[off+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// make next tag look valid to make errors look more likely
if (OVERFLOW < 0) {
buffer[BLOCK_SIZE + OVERFLOW] = ((uint8_t)lfs_parity(cksum) << 7);
}
// write to both mroot blocks
for (int i = 0; i < 2; i++) {
CFG->erase(CFG, i) => 0;
CFG->prog(CFG, i, 0, buffer, BLOCK_SIZE) => 0;
}
// try to mount, this should fail
lfs_t lfs;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => LFS_ERR_CORRUPT;
'''
[cases.test_mtree_truncated_gcksumdelta]
defines.OVERFLOW = [-3, -2, -1, 0, 1, 2, 3, 4]
defines.TRUNCATED_SIZE = [false, true]
in = 'lfs.c'
code = '''
// create a malformed mroot
uint8_t buffer[BLOCK_SIZE];
// fill with zeros to make parity checks easier
memset(buffer, 0, BLOCK_SIZE);
memcpy(&buffer[0], "evil", 4);
uint32_t cksum = lfs_crc32c(0, &buffer[0], 4);
// make sure we're not caught by magic checks
buffer[4+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_MAGIC >> 8);
buffer[4+1] = (uint8_t)(LFSR_TAG_MAGIC >> 0);
buffer[4+2] = 0;
buffer[4+3] = 8;
memcpy(&buffer[4+4], "littlefs", 8);
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[4], 4+8);
// append a tag for padding
lfs_size_t size = BLOCK_SIZE - (16+7) - (7+4) + OVERFLOW;
buffer[16+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_ATTR >> 8);
buffer[16+1] = (uint8_t)(LFSR_TAG_ATTR >> 0);
buffer[16+2] = 0;
buffer[16+3] = 0x80 | (0x7f & (size >> 0));
buffer[16+4] = 0x80 | (0x7f & (size >> 7));
buffer[16+5] = 0x80 | (0x7f & (size >> 14));
buffer[16+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// append a truncated gcksumdelta tag
lfs_off_t off = BLOCK_SIZE - (7+4) + OVERFLOW;
size = (TRUNCATED_SIZE) ? 4-lfs_smax(OVERFLOW, 0) : 4;
buffer[off+0] = ((uint8_t)lfs_parity(cksum) << 7)
| (uint8_t)(LFSR_TAG_GCKSUMDELTA >> 8);
buffer[off+1] = (uint8_t)(LFSR_TAG_GCKSUMDELTA >> 0);
buffer[off+2] = 0;
buffer[off+3] = 0x80 | (0x7f & (size >> 0));
buffer[off+4] = 0x80 | (0x7f & (size >> 7));
buffer[off+5] = 0x80 | (0x7f & (size >> 14));
buffer[off+6] = 0x00 | (0x7f & (size >> 21));
cksum = lfs_crc32c(cksum ^ ((uint32_t)lfs_parity(cksum) << 7),
&buffer[16], 7+size);
// make next tag look valid to make errors look more likely
if (OVERFLOW < 0) {
buffer[BLOCK_SIZE + OVERFLOW] = ((uint8_t)lfs_parity(cksum) << 7);
}
// write to both mroot blocks
for (int i = 0; i < 2; i++) {
CFG->erase(CFG, i) => 0;
CFG->prog(CFG, i, 0, buffer, BLOCK_SIZE) => 0;
}
// try to mount, this should fail
lfs_t lfs;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => LFS_ERR_CORRUPT;
'''
## Magic consistency ##
# make sure our magic string ("littlefs") shows up in the same place (off=8)
[cases.test_mtree_magic]
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
// check our magic string
//
// note if we lose power we may not have the magic string in both blocks!
// but we don't lose power in this test so we can assert the magic string
// is present in both
uint8_t magic[LFS_MAX(16, READ_SIZE)];
CFG->read(CFG, 0, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
CFG->read(CFG, 1, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
'''
[cases.test_mtree_magic_extend]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// prepare mroot with an entry
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our entry is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_unmount(&lfs) => 0;
// check our magic string
//
// note if we lose power we may not have the magic string in both blocks!
// but we don't lose power in this test so we can assert the magic string
// is present in both
uint8_t magic[LFS_MAX(16, READ_SIZE)];
CFG->read(CFG, 0, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
CFG->read(CFG, 1, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
'''
[cases.test_mtree_magic_extend_twice]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
# make it so blocks relocate every two compacts
defines.BLOCK_RECYCLES = 0
# force our block to compact by setting prog_size=block_size, we don't have
# any way to indirectly force the intermediary mroots to compact otherwise
defines.PROG_SIZE = 'BLOCK_SIZE'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR | F_FLAGS, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR | M_FLAGS, CFG) => 0;
lfs_alloc_ckpoint(&lfs);
lfsr_data_t data;
// prepare mroot with an entry
uint8_t buffer[SIZE];
buffer[0] = '\0';
memset(buffer+1, 'a', SIZE-1);
lfsr_mdir_t mdir;
lfsr_mtree_namelookup(&lfs, 0, (const char*)buffer+1, SIZE-1,
&mdir, NULL, NULL) => LFS_ERR_NOENT;
lfsr_mdir_commit(&lfs, &mdir, LFSR_RATTRS(
LFSR_RATTR(LFSR_TAG_REG, +1, LFSR_DATA_BUF(buffer, SIZE)))) => 0;
assert(mdir.rbyd.weight == 2);
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// force mroot to compact four times, this should relocate the mroot
// twice, forcing a second mroot extension
old_mroot = lfs.mroot;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.rbyd.eoff = -1;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our rattr is still in the mroot
lfsr_mtree_lookup(&lfs, (0 << lfs.mdir_bits)+1, &mdir) => 0;
assert(mdir.rbyd.weight == 2);
lfsr_mdir_lookup(&lfs, &mdir, LFSR_TAG_REG, &data) => 0;
lfsr_data_read(&lfs, &data, buffer, SIZE) => SIZE;
assert(buffer[1] == 'a');
lfsr_unmount(&lfs) => 0;
// check our magic string
//
// note if we lose power we may not have the magic string in both blocks!
// but we don't lose power in this test so we can assert the magic string
// is present in both
uint8_t magic[LFS_MAX(16, READ_SIZE)];
CFG->read(CFG, 0, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
CFG->read(CFG, 1, 0, magic, LFS_MAX(16, READ_SIZE)) => 0;
assert(memcmp(&magic[8], "littlefs", 8) == 0);
'''