Files
littlefs/tests/test_mtree.toml
T
Christopher Haster 5f3994c83b Renamed mbits/mlimit to mleaf_bits/mleaf_limit
- mbits -> mleaf_bits
- mlimit -> mleaf_limit
- mweight -> mleaf_weight
- lfsr_mridmask -> lfsr_midrmask
- lfsr_mbidmask -> lfsr_midbmask

This is a bit tricky to name, since we want to clarify it's not the
mtree limit and not the mdir's actual rbyd weight. But this also risks
confusing around the difference between mdirs/mleaves (mdirs are
mtree's leaves).
2023-09-15 14:09:42 -05:00

4428 lines
144 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'
# some helper functions
in = 'lfs.c'
code = '''
static lfs_ssize_t lfsr_mdir_get(lfs_t *lfs, const lfsr_mdir_t *mdir,
lfs_ssize_t rid, lfsr_tag_t tag, void *buffer, lfs_size_t size) {
lfsr_data_t data;
int err = lfsr_mdir_lookup(lfs, mdir, rid, tag, NULL, &data);
if (err) {
return err;
}
return lfsr_data_read(lfs, &data, buffer, size);
}
'''
# test a single mroot
[cases.test_mtree_mroot]
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfsr_unmount(&lfs) => 0;
'''
# test a single mroot with attributes
[cases.test_mtree_mroot_attrs]
defines.N = [1, 3]
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(i), 0, BUF(&alphas[i % 26], 1)))) => 0;
}
for (lfs_size_t i = 0; i < N; i++) {
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(i), buffer, 1) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
for (lfs_size_t i = 0; i < N; i++) {
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(i), buffer, 1) => 1;
assert(memcmp(buffer, &alphas[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 = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(i), 0, BUF(&alphas[i % 26], 1)))) => 0;
}
for (lfs_size_t i = 0; i < N; i++) {
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(i), buffer, 1) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
for (lfs_size_t i = 0; i < N; i++) {
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(i), buffer, 1) => 1;
assert(memcmp(buffer, &alphas[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 = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(&alphas[i % 26], 1)))) => 0;
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(1), buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(1), buffer, 4) => 1;
assert(memcmp(buffer, &alphas[(N-1) % 26], 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
lfsr_mdir_get(&lfs, &lfs.mroot,
-1, LFSR_TAG_UATTR(1), buffer, 4) => 1;
assert(memcmp(buffer, &alphas[(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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our entries are still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// now add another large entry to the mdir, forcing a split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was split correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
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 = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create entries
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs,
lfs_smax32(lfsr_mtree_weight(&lfs) - lfsr_mleafweight(&lfs), 0),
&mdir) => 0;
for (lfs_size_t i = 0; i < N; i++) {
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
mdir.mid += 1;
}
// try looking up each entry
lfs_size_t i = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// try looking up each entry
i = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
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)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// at least keep track of the number of entries we expect
lfs_size_t count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random mid
lfs_ssize_t mid = (lfs_ssize_t)(
TEST_PRNG(&prng) % lfs_max32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs)));
// fetch mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// limit our mid to our mdir's weight
mdir.mid = (mdir.mid & lfsr_midbmask(&lfs))
| (mdir.mid % (mdir.u.m.weight+1));
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
// add to rbyd, potentially splitting the mdir
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
// make sure we can look up the new entry
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
count += 1;
}
// try looking up each entry
lfs_size_t count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// try looking up each entry
count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// remove the entry, forcing the mdir to be dropped
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// remove the entry, forcing the mdir to be dropped
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
// force mdir to compact while we're removing
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
// remove the entry as we compact, forcing the mdir to be dropped
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_uninline_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an mdir that needs to be split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
// remove the left entry as we compact, forcing the left
// mdir to be dropped
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that one entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_uninline_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an mdir that needs to be split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
// remove the right entry as we compact, forcing the right mdir
// to be dropped
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that one entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_uninline_split_both]
# 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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an mdir that needs to be split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
// remove both entries as we compact, forcing both mdirs to be dropped
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL),
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// now add another large entry to the mdir, forcing a split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
// remove the left entry as we compact, forcing the left
// mdir to be dropped
mdir.mid = 0*lfsr_mleafweight(&lfs)+0;
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// now add another large entry to the mdir, forcing a split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
// remove the right entry as we compact, forcing the right
// mdir to be dropped
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(1, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that one entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_drop_split_both]
# 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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// now add another large entry to the mdir, forcing a split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
// remove both entries as we compact, forcing both mdirs to be dropped
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL),
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
# try creating an mtree and then dropping mdirs
[cases.test_mtree_drop_many]
defines.N = [5, 10, 20, 40, 80, 160, 320]
defines.REMAINING = [20, 5, 1, 0]
if = 'N > REMAINING'
defines.FORCE_COMPACTION = [false, true]
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create entries
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs,
lfs_smax32(lfsr_mtree_weight(&lfs) - lfsr_mleafweight(&lfs), 0),
&mdir) => 0;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
mdir.mid += 1;
}
// remove entries
for (lfs_size_t i = 0; i < N - REMAINING; i++) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
}
// try looking up each entry
lfs_size_t i = N - REMAINING;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// try looking up each entry
i = N - REMAINING;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
lfsr_unmount(&lfs) => 0;
'''
# this one has some pretty nasty corner cases
[cases.test_mtree_repeated_drop]
defines.N = [5, 10, 20, 40]
defines.FORCE_COMPACTION = [false, true]
defines.CYCLES = 10
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
for (lfs_size_t cycle = 0; cycle < CYCLES; cycle++) {
// create entries
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs,
lfs_smax32(lfsr_mtree_weight(&lfs) - lfsr_mleafweight(&lfs), 0),
&mdir) => 0;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
mdir.mid += 1;
}
// try looking up each entry
lfs_size_t i = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
// remove entries
for (lfs_size_t i = 0; i < N; i++) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
}
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
assert(lfs.mroot.u.m.weight == 0);
}
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
assert(lfs.mroot.u.m.weight == 0);
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)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// at least keep track of the number of entries we expect
lfs_size_t count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random mid
lfs_ssize_t mid = (lfs_ssize_t)(
TEST_PRNG(&prng) % lfs_max32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs)));
// fetch mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// limit our mid to our mdir's weight
mdir.mid = (mdir.mid & lfsr_midbmask(&lfs))
| (mdir.mid % (mdir.u.m.weight+1));
// choose to create or delete
uint8_t op = ((mdir.mid & lfsr_midrmask(&lfs)) == mdir.u.m.weight
? 0
: TEST_PRNG(&prng) % 2);
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
// create
if (op == 0) {
// add to rbyd, potentially splitting the mdir
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
// make sure we can look up the new entry
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
count += 1;
// delete
} else {
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, RM, -1, NULL))) => 0;
count -= 1;
}
}
// try looking up each entry
lfs_size_t count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// try looking up each entry
count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mtree has one mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// force mdir to compact twice, this should relocate
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_t old_mdir = mdir;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mtree has one mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_sibling_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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// force mdir to compact twice, this should relocate
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_t old_mdir = mdir;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_relocate_sibling_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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// force mdir to compact twice, this should relocate
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_t old_mdir = mdir;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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_CYCLES = 2
# 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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact 2x2 times, this should extend the mroot twice
lfsr_mdir_t old_mroot = lfs.mroot;
for (int i = 0; i < 4; i++) {
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
}
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
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 twice again, this should relocate the mroot
old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mtree has one mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// setup mroot to need to compact, this should trigger a relocation when
// we relocate the mdir below
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_t old_mroot = lfs.mroot;
// force mdir to compact twice, this should relocate
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_t old_mdir = mdir;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated our mdir
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mtree has one mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mdir
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// setup mroot to need to compact, this should trigger a relocation when
// we relocate the mdir below
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_t old_mroot = lfs.mroot;
// now add another large entry to the mdir, forcing a split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was split correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// setup mroot to need to compact, this should trigger a relocation when
// we relocate the mdir below
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_t old_mroot = lfs.mroot;
// remove the entry, forcing the mdir to be dropped
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, RM, -1, NULL))) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was dropped
assert(lfsr_mtree_weight(&lfs) == 0*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// force mroot to compact once, so the second compact below will trigger
// a relocation
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact, this should trigger a relocation
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// force mroot to compact once, so the second compact below will trigger
// a relocation
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact, this should trigger a relocation
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our entries are still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert we relocated our mroot
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
# this fuzz covers a lot of configuratinos
[cases.test_mtree_relocating_fuzz]
defines.N = [5, 10, 20, 40]
defines.FORCE_COMPACTION = [false, true]
defines.BLOCK_CYCLES = [5, 2, 1]
defines.SEED = 'range(500)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// at least keep track of the number of entries we expect
lfs_size_t count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random mid
lfs_ssize_t mid = (lfs_ssize_t)(
TEST_PRNG(&prng) % lfs_max32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs)));
// fetch mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// limit our mid to our mdir's weight
mdir.mid = (mdir.mid & lfsr_midbmask(&lfs))
| (mdir.mid % (mdir.u.m.weight+1));
// choose to create or delete
uint8_t op = ((mdir.mid & lfsr_midrmask(&lfs)) == mdir.u.m.weight
? 0
: TEST_PRNG(&prng) % 3);
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
// create
if (op == 0) {
// add to rbyd
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
// make sure we can look up the new entry
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
count += 1;
// update
} else if (op == 1) {
// update rbyd
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, 0,
BUF(&alphas[i % 26], 1)))) => 0;
// make sure we can look up the new entry
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
// delete
} else {
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, RM, -1, NULL))) => 0;
count -= 1;
}
}
// try looking up each entry
lfs_size_t count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
lfsr_unmount(&lfs) => 0;
// check things stay sane after remount
lfsr_mount(&lfs, CFG) => 0;
// try looking up each entry
count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// drop should make sure we never have empty mdirs
assert(lfsr_mtree_isinlined(&lfs) || mdir.u.m.weight > 0);
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
lfsr_unmount(&lfs) => 0;
'''
## Neighboring mdir updates ##
[cases.test_mtree_neighbor]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// insert a new entry, this should update our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF("c", 1)))) => 0;
// assert that our entry is still in the mtree
assert(lfs.mroot.u.m.weight == 3);
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot, 1, LFSR_TAG_REG,
buffer, 1) => 1;
assert(memcmp(buffer, "c", 1) == 0);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0);
assert(memcmp(&left_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
assert(right_neighbor.mdir.mid == 2);
assert(memcmp(&right_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_remove_l]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// try removing our left entry
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// assert that an entry was removed
assert(lfs.mroot.u.m.weight == 1);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == -1);
assert(right_neighbor.mdir.mid == 0);
assert(memcmp(&right_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_remove_r]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// try removing our left entry
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, RM, -1, NULL))) => 0;
// assert that an entry was removed
assert(lfs.mroot.u.m.weight == 1);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0);
assert(memcmp(&left_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
assert(right_neighbor.mdir.mid == -1);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'd', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 2);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "d", 1) == 0);
// note that our current implementation splits here, which is suboptimal
// but saves on code size
lfsr_mdir_t msibling;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &msibling) => 0;
assert(msibling.u.m.weight == 1);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m,
sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 1*lfsr_mleafweight(&lfs)+0);
assert(memcmp(&right_neighbor.mdir.u.m, &msibling.u.m,
sizeof(msibling.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'd', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(2, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our entries are still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 2);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
lfsr_mdir_t msibling;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &msibling) => 0;
assert(msibling.u.m.weight == 2);
lfsr_mdir_get(&lfs, &msibling, msibling.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "d", 1) == 0);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m,
sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 1*lfsr_mleafweight(&lfs)+1);
assert(memcmp(&right_neighbor.mdir.u.m, &msibling.u.m,
sizeof(msibling.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'd', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// setup our neighbors
//
// note we do this after uninlining! this is because uninlining may
// aggresively split the mtree if there are already neighbors in the mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid+0, REG, +1, BUF("a", 1)),
LFSR_ATTR(mdir.mid+2, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
assert(mdir.u.m.weight == 3);
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=mdir.mid+0, .u.m=mdir.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=mdir.mid+2, .u.m=mdir.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// now add another large entry to the mdir, forcing a split
memset(buffer, 'e', SIZE);
mdir.mid = 0*lfsr_mleafweight(&lfs)+2;
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// assert mdir was split correctly
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot still has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 2);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "d", 1) == 0);
lfsr_mdir_t msibling;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &msibling) => 0;
assert(msibling.u.m.weight == 2);
lfsr_mdir_get(&lfs, &msibling, msibling.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "e", 1) == 0);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m,
sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 1*lfsr_mleafweight(&lfs)+1);
assert(memcmp(&right_neighbor.mdir.u.m, &msibling.u.m,
sizeof(msibling.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// setup our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)),
LFSR_ATTR(1, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mroot
assert(lfsr_mtree_isinlined(&lfs));
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=0, .u.m=lfs.mroot.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=1, .u.m=lfs.mroot.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0);
assert(memcmp(&left_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
assert(right_neighbor.mdir.mid == 1);
assert(memcmp(&right_neighbor.mdir.u.m, &lfs.mroot.u.m,
sizeof(lfs.mroot.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create an uninlined mdir
uint8_t buffer[SIZE];
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'd', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// setup our neighbors
//
// note we do this after uninlining! this is because uninlining may
// aggresively split the mtree if there are already neighbors in the mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid+0, REG, +1, BUF("a", 1)),
LFSR_ATTR(mdir.mid+2, REG, +1, BUF("b", 1)))) => 0;
// this test only works if these all fit in the mdir
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
assert(mdir.u.m.weight == 3);
lfsr_openedmdir_t left_neighbor = {
.mdir={.mid=mdir.mid+0, .u.m=mdir.u.m}};
lfsr_openedmdir_t right_neighbor = {
.mdir={.mid=mdir.mid+2, .u.m=mdir.u.m}};
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// force mdir to compact twice, this should relocate
lfsr_mdir_t old_mdir = mdir;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'e', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(1, REG, 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mdir, &mdir) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "c", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 3);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "e", 1) == 0);
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+2);
assert(memcmp(&right_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_middle_split]
# 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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
//// create a situation where we have 3 mdirs in our tree
// first force mroot to uninlined+split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// we should now have 2 mdirs
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// now force one of our siblings to split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// we should now have 3 mdirs
assert(lfsr_mtree_weight(&lfs) == 3*lfsr_mleafweight(&lfs));
//// Now test splitting updates mids correctly
// setup our neighbors
lfsr_openedmdir_t left_neighbor;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0,
&left_neighbor.mdir) => 0;
assert(left_neighbor.mdir.u.m.weight == 1);
lfsr_openedmdir_t right_neighbor;
lfsr_mtree_lookup(&lfs, 2*lfsr_mleafweight(&lfs)+0,
&right_neighbor.mdir) => 0;
assert(right_neighbor.mdir.u.m.weight == 1);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// cause middle mdir to split
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'd', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// we should now have 4 mdirs
assert(lfsr_mtree_weight(&lfs) == 4*lfsr_mleafweight(&lfs));
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 3*lfsr_mleafweight(&lfs)+0);
lfsr_mtree_lookup(&lfs, 3*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(memcmp(&right_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_neighbor_middle_drop]
# 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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
//// create a situation where we have 3 mdirs in our tree
// first force mroot to uninlined+split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// we should now have 2 mdirs
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// now force one of our siblings to split
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+1, &mdir) => 0;
assert(mdir.u.m.weight == 1);
memset(buffer, 'c', SIZE);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mdir to compact
mdir.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &mdir, NULL, 0) => 0;
// we should now have 3 mdirs
assert(lfsr_mtree_weight(&lfs) == 3*lfsr_mleafweight(&lfs));
//// Now test dropping updates mids correctly
// setup our neighbors
lfsr_openedmdir_t left_neighbor;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0,
&left_neighbor.mdir) => 0;
assert(left_neighbor.mdir.u.m.weight == 1);
lfsr_openedmdir_t right_neighbor;
lfsr_mtree_lookup(&lfs, 2*lfsr_mleafweight(&lfs)+0,
&right_neighbor.mdir) => 0;
assert(right_neighbor.mdir.u.m.weight == 1);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_addopened(&lfs, LFS_TYPE_REG, &right_neighbor);
// cause middle mdir to drop
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, RM, -1, NULL))) => 0;
// we should now have 2 mdirs
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert that our neighbors were updated correctly
assert(left_neighbor.mdir.mid == 0*lfsr_mleafweight(&lfs)+0);
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(memcmp(&left_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
assert(right_neighbor.mdir.mid == 1*lfsr_mleafweight(&lfs)+0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(memcmp(&right_neighbor.mdir.u.m, &mdir.u.m, sizeof(mdir.u.m)) == 0);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &left_neighbor);
lfsr_mdir_removeopened(&lfs, LFS_TYPE_REG, &right_neighbor);
lfsr_unmount(&lfs) => 0;
'''
## mtree traversal ##
# test specific corner cases
[cases.test_mtree_traversal]
defines.VALIDATE = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// insert a new entry, this should update our neighbors
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF("a", 1)))) => 0;
// assert that our entry is still in the mtree
assert(lfs.mroot.u.m.weight == 1);
uint8_t buffer[1];
lfsr_mdir_get(&lfs, &lfs.mroot, 0, LFSR_TAG_REG,
buffer, 1) => 1;
assert(memcmp(buffer, "a", 1) == 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*1);
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert that our entry is still in the mtree
assert(lfs.mroot.u.m.weight == 1);
lfsr_mdir_get(&lfs, &lfs.mroot, 0, LFSR_TAG_REG,
buffer, 1) => 1;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_uninline]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.VALIDATE = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with a large attr so the next entry can not fit
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// create a large entry that needs to be uninlined (but not split!)
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*2);
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert mdir was unininlined correctly
assert(lfsr_mtree_weight(&lfs) == 1*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
// assert that our entry is still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_split]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.VALIDATE = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create 2 large entries that needs to be uninlined and split
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, REG, +1, BUF(buffer, SIZE)))) => 0;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(1, REG, +1, BUF(buffer, SIZE)))) => 0;
// force mroot to compact
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our entries are still in the mtree
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mdir_t msibling;
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &msibling) => 0;
assert(msibling.u.m.weight == 1);
lfsr_mdir_get(&lfs, &msibling, msibling.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*3);
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert mdirs were unininlined and split
assert(lfsr_mtree_weight(&lfs) == 2*lfsr_mleafweight(&lfs));
// assert mroot now has no entries
assert(lfs.mroot.u.m.weight == 0);
// assert that our entries are still in the mtree
lfsr_mtree_lookup(&lfs, 0*lfsr_mleafweight(&lfs)+0, &mdir) => 0;
assert(mdir.u.m.weight == 1);
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "a", 1) == 0);
lfsr_mtree_lookup(&lfs, 1*lfsr_mleafweight(&lfs)+0, &msibling) => 0;
assert(msibling.u.m.weight == 1);
lfsr_mdir_get(&lfs, &msibling, msibling.mid, LFSR_TAG_REG,
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_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_CYCLES = 2
defines.VALIDATE = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*3);
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
lfsr_unmount(&lfs) => 0;
'''
# larger traversal tests
[cases.test_mtree_traversal_many]
defines.N = [5, 10, 20, 40, 80, 160, 320]
defines.VALIDATE = [false, true]
defines.FORCE_COMPACTION = [false, true]
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// create entries
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs,
lfs_smax32(lfsr_mtree_weight(&lfs) - lfsr_mleafweight(&lfs), 0),
&mdir) => 0;
for (lfs_size_t i = 0; i < N; i++) {
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
mdir.mid += 1;
}
// try looking up each entry
lfs_size_t i = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
// 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*(1+N));
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// try looking up each entry
i = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
i += 1;
}
}
assert(i == N);
lfsr_unmount(&lfs) => 0;
'''
[cases.test_mtree_traversal_fuzz]
defines.N = [5, 10, 20, 40, 80, 160]
defines.VALIDATE = [false, true]
defines.FORCE_COMPACTION = [false, true]
defines.SEED = 'range(100)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// remove root dstart for now
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(0, RM, -1, NULL))) => 0;
// at least keep track of the number of entries we expect
lfs_size_t count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random mid
lfs_ssize_t mid = (lfs_ssize_t)(
TEST_PRNG(&prng) % lfs_max32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs)));
// fetch mdir
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
// limit our mid to our mdir's weight
mdir.mid = (mdir.mid & lfsr_midbmask(&lfs))
| (mdir.mid % (mdir.u.m.weight+1));
// force a compaction?
if (FORCE_COMPACTION) {
mdir.u.r.rbyd.eoff = -1;
lfs.mroot.u.r.rbyd.eoff = -1;
}
// add to rbyd, potentially splitting the mdir
lfsr_mdir_commit(&lfs, &mdir, LFSR_ATTRS(
LFSR_ATTR(mdir.mid, REG, +1,
BUF(&alphas[i % 26], 1)))) => 0;
// make sure we can look up the new entry
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
count += 1;
}
// try looking up each entry
lfs_size_t count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
// 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_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
VALIDATE ? LFSR_MTREE_TRAVERSAL_VALIDATE : 0);
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*(1+N));
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
// keep track of seen blocks
seen[mdir->u.m.blocks[1] / 8] |= 1 << (mdir->u.m.blocks[1] % 8);
seen[mdir->u.m.blocks[0] / 8] |= 1 << (mdir->u.m.blocks[0] % 8);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
// if traversal worked, we should be able to clobber all other blocks
uint8_t buffer_[BLOCK_SIZE];
memset(buffer_, 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, buffer_, BLOCK_SIZE) => 0;
}
}
free(seen);
// and the tree should still work
// try looking up each entry
count_ = 0;
for (lfs_ssize_t mid = 0;
mid < lfs_smax32(
lfsr_mtree_weight(&lfs),
lfsr_mleafweight(&lfs));
mid += lfsr_mleafweight(&lfs)) {
lfsr_mdir_t mdir;
lfsr_mtree_lookup(&lfs, mid, &mdir) => 0;
for (; (mdir.mid & lfsr_midrmask(&lfs))
< (lfs_ssize_t)mdir.u.m.weight;
mdir.mid += 1) {
uint8_t buffer[4];
lfsr_mdir_get(&lfs, &mdir, mdir.mid, LFSR_TAG_REG,
buffer, 4) => 1;
count_ += 1;
}
}
// the mtree is a bit difficult to simulate, but we can at least test
// we ended up with the right number of entries
assert(count_ == count);
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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
uint8_t buf[LFSR_MDIR_DSIZE];
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1,
MROOT, 0, FROMMBLOCKS(&lfs, LFSR_MBLOCKS_MROOTANCHOR(),
buf)))) => 0;
// technically, cycle detection only needs to work when we're validating
lfsr_mtree_traversal_t traversal = LFSR_MTREE_TRAVERSAL(
LFSR_MTREE_TRAVERSAL_VALIDATE);
for (lfs_block_t i = 0;; i++) {
// assert that we detect the cycle in a reasonable number of iterations
assert(i < 1024);
lfs_ssize_t mid_;
lfsr_tag_t tag_;
lfsr_data_t data_;
int err = lfsr_mtree_traversal_next(&lfs, &traversal,
&mid_, &tag_, &data_);
assert(!err || err == LFS_ERR_CORRUPT);
if (err == LFS_ERR_CORRUPT) {
break;
}
if (tag_ == LFSR_TAG_BTREE) {
lfsr_rbyd_t *branch = (lfsr_rbyd_t *)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x btree 0x%x.%x\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
branch->block, branch->trunk);
} else if (tag_ == LFSR_TAG_MDIR) {
lfsr_mdir_t *mdir = (lfsr_mdir_t*)data_.u.b.buffer;
printf("traversal: %d.%d 0x%x mdir 0x{%x,%x}\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
mdir->u.m.blocks[0], mdir->u.m.blocks[1]);
} else {
// this shouldn't happen
printf("traversal: %d.%d 0x%x %d\n",
mid_ >> lfs.mleaf_bits,
mid_ & lfsr_midrmask(&lfs),
tag_,
lfsr_data_size(&data_));
assert(false);
}
}
lfsr_unmount(&lfs) => 0;
'''
## Magic consistency ##
# make sure our magic string ("littlefs") shows up in the same place (off=8)
[cases.test_mtree_magic]
# this should be set so only one entry can fit in a metadata block
defines.SIZE = 'BLOCK_SIZE / 4'
code = '''
lfs_t lfs;
lfsr_format(&lfs, 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_CYCLES = 2
in = 'lfs.c'
code = '''
lfs_t lfs;
lfsr_format(&lfs, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact twice, this should extend the mroot
lfsr_mdir_t old_mroot = lfs.mroot;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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_CYCLES = 2
# 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, CFG) => 0;
lfsr_mount(&lfs, CFG) => 0;
lfs_alloc_ack(&lfs);
// prepare mroot with an attr
uint8_t buffer[SIZE];
memset(buffer, 'a', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// force mroot to compact 2x2 times, this should extend the mroot twice
lfsr_mdir_t old_mroot = lfs.mroot;
for (int i = 0; i < 4; i++) {
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
lfsr_mdir_commit(&lfs, &lfs.mroot, NULL, 0) => 0;
}
lfs.mroot.u.r.rbyd.eoff = BLOCK_SIZE;
memset(buffer, 'b', SIZE);
lfsr_mdir_commit(&lfs, &lfs.mroot, LFSR_ATTRS(
LFSR_ATTR(-1, UATTR(1), 0, BUF(buffer, SIZE)))) => 0;
// assert we relocated
assert(lfsr_mdir_cmp(&old_mroot, &lfs.mroot) != 0);
// assert that our attr is still in the mroot
lfsr_mdir_get(&lfs, &lfs.mroot, -1, LFSR_TAG_UATTR(1),
buffer, SIZE) => SIZE;
assert(memcmp(buffer, "b", 1) == 0);
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);
'''