Files
littlefs/tests/test_btree.toml
T
Christopher Haster 7a0842295c Partial implementation of B-tree name split/lookup
Name lookup brings back the O(m') scan-during-fetch approach of the
previous metadata layout. Since our rbyd trees map id+attr pairs and not
actual names, this beats the alternative O(m log(m)) scan of the tree.

Though tree searching does only include the current attributes, where as
scanning during fetch needs to also look at outdated attributes. Which
may make the winner less obvious depending on how we find the rbyd. But
being able to do the search in the same pass as fetch is an extra plus.

---

What turned out to be surprisingly complicated was the propagation of
names during B-tree splits and merges. The on-disk reference,
lfsr_data_t, does most of the heavy lifting here, but there's just a lot
of corner cases to consider.

At the moment this isn't working due to outdated names on the leading
entries of the rbyds, but to fix this bigger changes to the B-tree
layout may be needed.
2023-03-21 12:50:38 -05:00

3706 lines
115 KiB
TOML

# maximize lookahead buffer, we don't actually gc so we only get one pass
# of the disk for these tests
defines.LOOKAHEAD_SIZE = 'BLOCK_COUNT / 8'
# test an empty tree
[cases.test_btree_zero]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create an empty tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 0);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
# test an inlined tree
[cases.test_btree_one]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
# test a single-rbyd tree
[cases.test_btree_two]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_two_backwards]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "b", 1) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
# still a single-rbyd tree, just making sure it works
[cases.test_btree_three]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1, "c", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "c", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_three_backwards]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "c", 1) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "b", 1) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "c", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
# try larger trees, when exactly a tree splits depends on the disk geometry, so
# we don't really have a better way of testing multi-rbyd trees
[cases.test_btree_push]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_push_backwards]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&alphas[(N-1-i) % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_push_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t sim_size = 0;
memset(sim, 0, N);
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size+1);
// add to btree
lfsr_btree_push(&lfs, &btree, id, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
// add to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
sim[id] = alphas[i % 26];
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
lfs_deinit(&lfs) => 0;
}
'''
[cases.test_btree_push_sparse]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
&alphas[i % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N*W,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_push_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.W = 5
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 0;
memset(sim, 0, N);
memset(sim_weights, 0, N*sizeof(lfs_size_t));
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size+1);
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
// add to btree
lfsr_btree_push(&lfs, &btree, weighted_id, LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
// add to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_weights[id+1], &sim_weights[id],
(sim_size-id)*sizeof(lfs_size_t));
sim[id] = alphas[i % 26];
sim_weights[id] = weight;
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_id+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
# test btree updates
# try some small trees for easy corner cases first
[cases.test_btree_update_one]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
// update the tree
lfsr_btree_update(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "A", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_update_two]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
// update the tree
lfsr_btree_update(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "A", 1) => 0;
lfsr_btree_update(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "B", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_update_three]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1, "c", 1) => 0;
// update the tree
lfsr_btree_update(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "A", 1) => 0;
lfsr_btree_update(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "B", 1) => 0;
lfsr_btree_update(&lfs, &btree, 2, LFSR_TAG_INLINED, 1, "C", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "C", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_update]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
// update the tree
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_update(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&uppers[i % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &uppers[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_update_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = alphas[i % 26];
}
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % N;
// update btree
lfsr_btree_update(&lfs, &btree, id, LFSR_TAG_INLINED, 1,
&uppers[i % 26], 1) => 0;
// update sim
sim[id] = uppers[i % 26];
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < N; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, N,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
[cases.test_btree_update_sparse]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
&alphas[i % 26], 1) => 0;
}
// update the tree
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_update(&lfs, &btree, i*W+W-1, LFSR_TAG_INLINED, W,
&uppers[i % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &uppers[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N*W,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &uppers[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_update_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.W = 5
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
&alphas[i % 26], 1) => 0;
}
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = alphas[i % 26];
sim_weights[i] = W;
}
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % N;
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
// update btree
lfsr_btree_update(&lfs, &btree,
weighted_id+sim_weights[id]-1, LFSR_TAG_INLINED, weight,
&uppers[i % 26], 1) => 0;
// update sim
sim[id] = uppers[i % 26];
sim_weights[id] = weight;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_id+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < N; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
# test btree pops
# try some corner cases first, these are actually pretty tricky since we
# need to recognize when to collapse back into an inlined tree
[cases.test_btree_pop_one]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 0) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 0);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try to putting it back to see if things still work
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "A", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_two]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try to putting it back to see if things still work
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "B", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_two_other]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 0) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try to putting it back to see if things still work
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "A", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_three]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "a", 1) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1, "b", 1) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1, "c", 1) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 2) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try to putting it back to see if things still work
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1, "C", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "C", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.REMAINING = [64, 2, 1, 0]
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
lfsr_btree_pop(&lfs, &btree, N-1-i) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == REMAINING);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, REMAINING,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, REMAINING, LFSR_TAG_INLINED, 1,
"R", 1) => 0;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == REMAINING);
assert(weight_ == 1);
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_get(&lfs, &btree, REMAINING+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_backwards]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.REMAINING = [64, 2, 1, 0]
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
lfsr_btree_pop(&lfs, &btree, 0) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == REMAINING);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[(i+(N-REMAINING)) % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, REMAINING,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
"R", 1) => 0;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "R", 1) == 0);
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i+1);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[(i+(N-REMAINING)) % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.REMAINING = [64, 2, 1, 0]
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
}
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t sim_size = N;
for (lfs_size_t i = 0; i < N; i++) {
sim[i] = alphas[i % 26];
}
uint32_t prng = seed;
for (lfs_size_t i = 0; i < (N-REMAINING); i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % sim_size;
// remove from btree
lfsr_btree_pop(&lfs, &btree, id) => 0;
// remove from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
sim_size -= 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
[cases.test_btree_pop_sparse]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.REMAINING = [64, 2, 1, 0]
defines.W = 5
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
&alphas[i % 26], 1) => 0;
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
lfsr_btree_pop(&lfs, &btree, (N-1-i)*W+W-1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == REMAINING*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, REMAINING*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, REMAINING*W, LFSR_TAG_INLINED, W,
"R", 1) => 0;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == REMAINING*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_get(&lfs, &btree, (REMAINING+1)*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == REMAINING*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.REMAINING = [64, 2, 1, 0]
defines.W = 5
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 0;
// set up simulation and btree with pseudo-random weights
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_push(&lfs, &btree, weighted_id, LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
sim[i] = alphas[i % 26];
sim_weights[i] = weight;
sim_size += 1;
}
for (lfs_size_t i = 0; i < (N-REMAINING); i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % sim_size;
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
// remove from btree
lfsr_btree_pop(&lfs, &btree, weighted_id+sim_weights[id]-1) => 0;
// remove from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
memmove(&sim_weights[id], &sim_weights[id+1],
(sim_size-(id+1))*sizeof(lfs_size_t));
sim_size -= 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_id+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
# test btree splits
[cases.test_btree_split]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&alphas[0 % 26], 1) => 0;
for (lfs_size_t i = 1; i < N; i++) {
lfsr_btree_split(&lfs, &btree, i-1, NULL, 0,
LFSR_TAG_INLINED, 1, &alphas[(i-1) % 26], 1,
LFSR_TAG_INLINED, 1, &alphas[(i-0) % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_split_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&alphas[0 % 26], 1) => 0;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t sim_size = 1;
memset(sim, 0, N);
sim[0] = alphas[0 % 26];
uint32_t prng = seed;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % sim_size;
// split btree
lfsr_btree_split(&lfs, &btree, id, NULL, 0,
LFSR_TAG_INLINED, 1, &alphas[i % 26], 1,
LFSR_TAG_INLINED, 1, &uppers[i % 26], 1) => 0;
// split sim
memmove(&sim[id+1], &sim[id], sim_size-id);
sim[id+0] = alphas[i % 26];
sim[id+1] = uppers[i % 26];
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
lfs_deinit(&lfs) => 0;
}
'''
[cases.test_btree_split_sparse]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, W,
&alphas[0 % 26], 1) => 0;
for (lfs_size_t i = 1; i < N; i++) {
lfsr_btree_split(&lfs, &btree, (i-1)*W+W-1, NULL, 0,
LFSR_TAG_INLINED, W, &alphas[(i-1) % 26], 1,
LFSR_TAG_INLINED, W, &alphas[(i-0) % 26], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
// and check that we can't lookup elements that aren't in the tree
lfsr_btree_get(&lfs, &btree, N*W,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_split_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.W = 5
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, W,
&alphas[0 % 26], 1) => 0;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 1;
memset(sim, 0, N);
memset(sim_weights, 0, N*sizeof(lfs_size_t));
sim[0] = alphas[0 % 26];
sim_weights[0] = W;
uint32_t prng = seed;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % sim_size;
// choose pseudo-random weights
lfs_size_t weight1 = 1 + (TEST_PRNG(&prng) % W);
lfs_size_t weight2 = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
// split btree
lfsr_btree_split(&lfs, &btree, weighted_id+sim_weights[id]-1,
NULL, 0,
LFSR_TAG_INLINED, weight1, &alphas[i % 26], 1,
LFSR_TAG_INLINED, weight2, &uppers[i % 26], 1) => 0;
// add to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_weights[id+1], &sim_weights[id],
(sim_size-id)*sizeof(lfs_size_t));
sim[id+0] = alphas[i % 26];
sim[id+1] = uppers[i % 26];
sim_weights[id+0] = weight1;
sim_weights[id+1] = weight2;
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_id+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < N; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
# Some more general fuzz testing
[cases.test_btree_general_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.SAMPLES = 100
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t sim_size = 0;
memset(sim, 0, N);
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random op
uint8_t op = TEST_PRNG(&prng) % 3;
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size+1);
if (op == 0 || id == sim_size) {
// push to btree
lfsr_btree_push(&lfs, &btree, id,
LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
// push to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
sim[id] = alphas[i % 26];
sim_size += 1;
} else if (op == 1) {
// update btree
lfsr_btree_update(&lfs, &btree, id,
LFSR_TAG_INLINED, 1,
&alphas[i % 26], 1) => 0;
// update sim
sim[id] = alphas[i % 26];
} else {
// pop from btree
lfsr_btree_pop(&lfs, &btree, id) => 0;
// pop from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
sim_size -= 1;
}
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
[cases.test_btree_general_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
defines.SAMPLES = 100
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 0;
memset(sim, 0, N);
memset(sim_weights, 0, N*sizeof(lfs_size_t));
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random op
uint8_t op = TEST_PRNG(&prng) % 3;
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size+1);
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
if (op == 0 || id == sim_size) {
// push to btree
lfsr_btree_push(&lfs, &btree, weighted_id,
LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
// push to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_weights[id+1], &sim_weights[id],
(sim_size-id)*sizeof(lfs_size_t));
sim[id] = alphas[i % 26];
sim_weights[id] = weight;
sim_size += 1;
} else if (op == 1) {
// update btree
lfsr_btree_update(&lfs, &btree,
weighted_id+sim_weights[id]-1, LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
// update sim
sim[id] = alphas[i % 26];
sim_weights[id] = weight;
} else {
// remove from btree
lfsr_btree_pop(&lfs, &btree,
weighted_id+sim_weights[id]-1) => 0;
// remove from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
memmove(&sim_weights[id], &sim_weights[id+1],
(sim_size-(id+1))*sizeof(lfs_size_t));
sim_size -= 1;
}
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''
# test key-value btrees
[cases.test_btree_find_one]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a single-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "0", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 1);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_find(&lfs, &btree, "aaa", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aab", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "0", 1) == 0);
'''
[cases.test_btree_find_two]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "0", 1) => 0;
lfsr_btree_split(&lfs, &btree, 0, "aab", 3,
LFSR_TAG_INLINED, 1, "0", 1,
LFSR_TAG_INLINED, 1, "1", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 2);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_find(&lfs, &btree, "aaa", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aab", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aac", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "1", 1) == 0);
'''
[cases.test_btree_find_three]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "0", 1) => 0;
lfsr_btree_split(&lfs, &btree, 0, "aab", 3,
LFSR_TAG_INLINED, 1, "0", 1,
LFSR_TAG_INLINED, 1, "1", 1) => 0;
lfsr_btree_split(&lfs, &btree, 1, "aac", 3,
LFSR_TAG_INLINED, 1, "1", 1,
LFSR_TAG_INLINED, 1, "2", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_find(&lfs, &btree, "aaa", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aab", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aac", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "2", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aad", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "2", 1) == 0);
'''
[cases.test_btree_find_three_backwards]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a two-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1, "0", 1) => 0;
lfsr_btree_split(&lfs, &btree, 0, "aac", 3,
LFSR_TAG_INLINED, 1, "1", 1,
LFSR_TAG_INLINED, 1, "2", 1) => 0;
lfsr_btree_split(&lfs, &btree, 0, "aab", 3,
LFSR_TAG_INLINED, 1, "0", 1,
LFSR_TAG_INLINED, 1, "1", 1) => 0;
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == 3);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
lfsr_btree_find(&lfs, &btree, "aaa", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 0);
assert(weight_ == 1);
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aab", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 1);
assert(weight_ == 1);
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aac", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "2", 1) == 0);
lfsr_btree_find(&lfs, &btree, "aad", 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == 2);
assert(weight_ == 1);
assert(memcmp(buffer, "2", 1) == 0);
'''
[cases.test_btree_find]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&nums[0 % 10], 1) => 0;
for (lfs_size_t i = 1; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
lfsr_btree_split(&lfs, &btree, i-1, name, 3,
LFSR_TAG_INLINED, 1, &nums[(i-1) % 10], 1,
LFSR_TAG_INLINED, 1, &nums[(i-0) % 10], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
lfsr_btree_find(&lfs, &btree, name, 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &nums[i % 10], 1) == 0);
}
'''
[cases.test_btree_find_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&alphas[0 % 26], 1) => 0;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
char (*sim_names)[3] = malloc(N*3);
lfs_size_t sim_size = 1;
memset(sim, 0, N);
memset(sim_names, 0, N*3);
sim[0] = alphas[0 % 26];
memcpy(&sim_names[0], "___", 3);
uint32_t prng = seed;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % (26*26*26);
char name[3] = {
alphas[(x/26/26) % 26], alphas[(x/26) % 26], alphas[x % 26]
};
// find where to split
lfs_size_t id = 0;
while (id+1 < sim_size && memcmp(sim_names[id+1], name, 3) <= 0) {
id += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[id], name, 3) == 0) {
continue;
}
// split btree
lfsr_btree_split(&lfs, &btree, id, name, 3,
LFSR_TAG_INLINED, 1, &nums[i % 10], 1,
LFSR_TAG_INLINED, 1, &nums[i % 10], 1) => 0;
// split sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_names[id+1], &sim_names[id], (sim_size-id)*3);
sim[id+0] = nums[i % 10];
sim[id+1] = nums[i % 10];
memcpy(&sim_names[id+1], name, 3);
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%.3s=%c", sim_names[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_find(&lfs, &btree, sim_names[i], 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// clean up sim
free(sim);
free(sim_names);
lfs_deinit(&lfs) => 0;
}
'''
[cases.test_btree_find_sparse]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, W,
&nums[0 % 10], 1) => 0;
for (lfs_size_t i = 1; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
lfsr_btree_split(&lfs, &btree, (i-1)*W+W-1, name, 3,
LFSR_TAG_INLINED, W, &nums[(i-1) % 10], 1,
LFSR_TAG_INLINED, W, &nums[(i-0) % 10], 1) => 0;
}
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == N*W);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
lfsr_btree_find(&lfs, &btree, name, 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i*W+W-1);
assert(weight_ == W);
assert(memcmp(buffer, &nums[i % 10], 1) == 0);
}
'''
[cases.test_btree_find_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.W = 5
defines.SAMPLES = 10
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, W,
&alphas[0 % 26], 1) => 0;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
char (*sim_names)[3] = malloc(N*3);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 1;
memset(sim, 0, N);
memset(sim_names, 0, N*3);
memset(sim_weights, 0, N*sizeof(lfs_size_t));
sim[0] = alphas[0 % 26];
memcpy(&sim_names[0], "___", 3);
sim_weights[0] = W;
uint32_t prng = seed;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % (26*26*26);
char name[3] = {
alphas[(x/26/26) % 26], alphas[(x/26) % 26], alphas[x % 26]
};
// choose pseudo-random weights
lfs_size_t weight1 = 1 + (TEST_PRNG(&prng) % W);
lfs_size_t weight2 = 1 + (TEST_PRNG(&prng) % W);
// find where to split
lfs_size_t id = 0;
while (id+1 < sim_size && memcmp(sim_names[id+1], name, 3) <= 0) {
id += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[id], name, 3) == 0) {
continue;
}
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
// split btree
lfsr_btree_split(&lfs, &btree, weighted_id+sim_weights[id]-1,
name, 3,
LFSR_TAG_INLINED, weight1, &nums[i % 10], 1,
LFSR_TAG_INLINED, weight2, &nums[i % 10], 1) => 0;
// split sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_names[id+1], &sim_names[id], (sim_size-id)*3);
memmove(&sim_weights[id+1], &sim_weights[id],
(sim_size-id)*sizeof(lfs_size_t));
sim[id+0] = nums[i % 10];
sim[id+1] = nums[i % 10];
memcpy(&sim_names[id+1], name, 3);
sim_weights[id+0] = weight1;
sim_weights[id+1] = weight2;
sim_size += 1;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%.3sid%dw%d=%c",
sim_names[i],
weighted_id+sim_weights[i]-1,
sim_weights[i],
sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < N; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_find(&lfs, &btree, sim_names[i], 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// clean up sim
free(sim);
free(sim_names);
free(sim_weights);
lfs_deinit(&lfs) => 0;
}
'''
# make sure we test finds with other operations
[cases.test_btree_find_general_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.SAMPLES = 100
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
&alphas[0 % 26], 1) => 0;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
char (*sim_names)[3] = malloc(N*3);
lfs_size_t sim_size = 1;
memset(sim, 0, N);
memset(sim_names, 0, N*3);
sim[0] = alphas[0 % 26];
memcpy(&sim_names[0], "___", 3);
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random op
uint8_t op = TEST_PRNG(&prng) % 3;
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size == 0 ? 1 : sim_size);
// choose a pseudo-random name
lfs_size_t x = TEST_PRNG(&prng) % (26*26*26);
char name[3] = {
alphas[(x/26/26) % 26], alphas[(x/26) % 26], alphas[x % 26]
};
// don't let sim drop below one element
if (op == 0 || sim_size <= 1) {
// find where to split
printf("- split(\"%.3s\", \"%c\")\n", name, nums[i % 10]);
lfs_size_t id = 0;
while (id+1 < sim_size
&& memcmp(sim_names[id+1], name, 3) <= 0) {
id += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[id], name, 3) == 0) {
continue;
}
// split btree
lfsr_btree_split(&lfs, &btree, id, name, 3,
LFSR_TAG_INLINED, 1, &nums[i % 10], 1,
LFSR_TAG_INLINED, 1, &nums[i % 10], 1) => 0;
// split sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_names[id+1], &sim_names[id], (sim_size-id)*3);
sim[id+0] = nums[i % 10];
sim[id+1] = nums[i % 10];
memcpy(&sim_names[id+1], name, 3);
sim_size += 1;
} else if (op == 1) {
// update btree
printf("- update(%d, \"%c\")\n", id, nums[i % 10]);
lfsr_btree_update(&lfs, &btree, id,
LFSR_TAG_INLINED, 1,
&nums[i % 10], 1) => 0;
// update sim
sim[id] = nums[i % 10];
} else {
// pop from btree
printf("- pop(%d)\n", id);
lfsr_btree_pop(&lfs, &btree, id) => 0;
// pop from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
memmove(&sim_names[id], &sim_names[id+1], (sim_size-(id+1))*3);
sim_size -= 1;
// our B-tree doesn't actually track the name of id0, so we need
// mirror this in our sim
if (id == 0) {
memcpy(&sim_names[0], "___", 3);
}
}
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%.3s=%c", sim_names[i], sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
assert(btree.weight == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_find(&lfs, &btree, sim_names[i], 3,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == i);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// clean up sim
free(sim);
free(sim_names);
}
'''
[cases.test_btree_find_general_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.W = 5
defines.SAMPLES = 100
# -1 => all pseudo-random seeds
# n => reproduce a specific seed
defines.SEED = -1
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
// iterate through severals seeds that we can reproduce easily
for (uint32_t seed = (SEED == -1 ? 1 : SEED);
(SEED == -1 ? seed < SAMPLES+1 : seed == SEED);
seed++) {
printf("--- seed: %d ---\n", seed);
// create lfs here since we need to reset each iteration, we're
// space constrained and we can't expect gc to work at this point
lfs_t lfs;
lfs_init(&lfs, cfg) => 0;
// create free lookahead
memset(lfs.free.buffer, 0, lfs.cfg->lookahead_size);
lfs.free.off = 0;
lfs.free.size = lfs_min(8*lfs.cfg->lookahead_size,
lfs.cfg->block_count);
lfs.free.i = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// set up a simulation to compare against
//
// fun fact this is slower than our actual tree! unfun fact this is
// starting to be a problem...
char *sim = malloc(N);
lfs_size_t *sim_weights = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 0;
memset(sim, 0, N);
memset(sim_weights, 0, N*sizeof(lfs_size_t));
uint32_t prng = seed;
for (lfs_size_t i = 0; i < N; i++) {
// choose a pseudo-random op
uint8_t op = TEST_PRNG(&prng) % 3;
// choose a pseudo-random id
lfs_size_t id = TEST_PRNG(&prng) % (sim_size+1);
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < id; j++) {
weighted_id += sim_weights[j];
}
if (op == 0 || id == sim_size) {
// push to btree
lfsr_btree_push(&lfs, &btree, weighted_id,
LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
// push to sim
memmove(&sim[id+1], &sim[id], sim_size-id);
memmove(&sim_weights[id+1], &sim_weights[id],
(sim_size-id)*sizeof(lfs_size_t));
sim[id] = alphas[i % 26];
sim_weights[id] = weight;
sim_size += 1;
} else if (op == 1) {
// update btree
lfsr_btree_update(&lfs, &btree,
weighted_id+sim_weights[id]-1, LFSR_TAG_INLINED, weight,
&alphas[i % 26], 1) => 0;
// update sim
sim[id] = alphas[i % 26];
sim_weights[id] = weight;
} else {
// remove from btree
lfsr_btree_pop(&lfs, &btree,
weighted_id+sim_weights[id]-1) => 0;
// remove from sim
memmove(&sim[id], &sim[id+1], sim_size-(id+1));
memmove(&sim_weights[id], &sim_weights[id+1],
(sim_size-(id+1))*sizeof(lfs_size_t));
sim_size -= 1;
}
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
if (!first) {
printf(", ");
}
first = false;
printf("%c", sim[i]);
}
printf("]\n");
printf("btree: 0x%x.%x 0x%x w%d\n",
btree.u.trunk.block,
btree.u.trunk.limit,
btree.tag,
btree.weight);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(btree.weight == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t id_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_id+sim_weights[i]-1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
id_ = -1;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual id in btree space
lfs_size_t weighted_id = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_id += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(id_ == weighted_id+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, id_+1,
&tag_, &id_, &weight_,
buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
}
'''