Files
littlefs/tests/test_btree.toml
T
Christopher Haster 256430213d Dropped separate BTREE/BRANCH encodings
There is a bit of redundancy here, as we already know the weights of
btree's inner-branches from their parents. But in theory sharing the
same encoding for both the top level btree reference and inner-branches
should offer more chance for deduplication and hopefully less code.

This also moves some members around in the btree encoding so that the
redund blocks are at the beginning. This _might_ simplify decoding of
the variable-length redund blocks at some point.

Current btree encoding:

  .----+----+----+----.
  |       blocks    ...  redund leb128s (1-20 bytes)
  :                   :
  |----+----+----+----|
  |       trunk     ...  1 leb128 (1-5 bytes)
  |----+----+----+----|
  |       weight    ...  1 leb128 (1-5 bytes)
  |----+----+----+----|
  |       cksum       |  1 le32 (4 bytes)
  '----+----+----+----'

This also partially reverts some tag name changes:

- BNAME -> BRANCH
- DMARK -> BOOKMARK
2023-08-22 13:20:37 -05:00

4460 lines
138 KiB
TOML

# Test the mid-level B-trees
after = 'test_rbyd'
# maximize lookahead buffer, we don't actually gc so we only get one pass
# of the disk for these tests
defines.LOOKAHEAD_SIZE = 'lfs_alignup(BLOCK_COUNT / 8, 8)'
# helper functions
in = 'lfs.c'
code = '''
static int lfsr_btree_get(lfs_t *lfs,
const lfsr_btree_t *btree, lfs_size_t bid,
lfsr_tag_t *tag_, lfs_size_t *weight_,
void *buffer, lfs_size_t size) {
lfsr_data_t data;
int err = lfsr_btree_lookup(lfs, btree, bid,
tag_, weight_, &data);
if (err) {
return err;
}
return lfsr_data_read(lfs, &data, buffer, size);
}
static int lfsr_btree_push(lfs_t *lfs, lfsr_btree_t *btree,
lfs_size_t bid, lfsr_tag_t tag, lfs_size_t weight,
lfsr_data_t data) {
LFS_ASSERT(bid <= lfsr_btree_weight(btree));
return lfsr_btree_commit(lfs, btree, LFSR_ATTRS(
LFSR_ATTR(bid, TAG(tag), +weight, DATA(data))));
}
static int lfsr_btree_set(lfs_t *lfs, lfsr_btree_t *btree,
lfs_size_t bid, lfsr_tag_t tag, lfs_size_t weight,
lfsr_data_t data) {
LFS_ASSERT(bid < lfsr_btree_weight(btree));
LFS_ASSERT(lfsr_btree_weight(btree) > 0);
// lookup weight to compute deltas
lfs_size_t weight_;
int err = lfsr_btree_lookupnext(lfs, btree, bid,
NULL, NULL, &weight_, NULL);
if (err) {
return err;
}
// note we need a second tag here in case our entry has a
// name attributes, the name attribute holds the weight not
// the struct tag
return lfsr_btree_commit(lfs, btree, LFSR_ATTRS(
LFSR_ATTR(bid, WIDE(TAG(tag)), 0, DATA(data)),
LFSR_ATTR(bid, GROW, weight - weight_, NULL)));
}
static int lfsr_btree_pop(lfs_t *lfs, lfsr_btree_t *btree, lfs_size_t bid) {
LFS_ASSERT(bid < lfsr_btree_weight(btree));
LFS_ASSERT(lfsr_btree_weight(btree) > 0);
// lookup weight to compute deltas
lfs_size_t weight_;
int err = lfsr_btree_lookupnext(lfs, btree, bid,
NULL, NULL, &weight_, NULL);
if (err) {
return err;
}
return lfsr_btree_commit(lfs, btree, LFSR_ATTRS(
LFSR_ATTR(bid, RM, -weight_, NULL)));
}
static int lfsr_btree_split(lfs_t *lfs, lfsr_btree_t *btree,
lfs_size_t bid, lfsr_data_t name,
lfsr_tag_t tag1, lfs_size_t weight1, lfsr_data_t data1,
lfsr_tag_t tag2, lfs_size_t weight2, lfsr_data_t data2) {
LFS_ASSERT(bid < lfsr_btree_weight(btree));
LFS_ASSERT(lfsr_btree_weight(btree) > 0);
// lookup weight to compute deltas
lfs_size_t weight_;
int err = lfsr_btree_lookupnext(lfs, btree, bid,
NULL, NULL, &weight_, NULL);
if (err) {
return err;
}
return lfsr_btree_commit(lfs, btree, LFSR_ATTRS(
LFSR_ATTR(bid, GROW, +weight1-weight_, NULL),
LFSR_ATTR(bid-(weight_-1)+weight1-1, TAG(tag1), 0, DATA(data1)),
(lfsr_data_size(&name) > 0
? LFSR_ATTR(bid-(weight_-1)+weight1,
BRANCH, +weight2, DATA(name))
: LFSR_ATTR_NOOP),
(lfsr_data_size(&name) > 0
? LFSR_ATTR(bid-(weight_-1)+weight1+weight2-1,
TAG(tag2), 0, DATA(data2))
: LFSR_ATTR(bid-(weight_-1)+weight1,
TAG(tag2), +weight2, DATA(data2)))));
}
'''
# 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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create an empty tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 0);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("b", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("a", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1,
LFSR_DATA("c", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "c", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("c", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("a", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "c", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_size_t n = 0;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_size_t n = 0;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[(N-1-i) % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, n-1-i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[(N-1-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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_push_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % (sim_size+1);
// add to btree
int err = lfsr_btree_push(&lfs, &btree, bid, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// add to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
sim[bid] = 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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_size_t n = 0;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == i*W+W-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 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.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % (sim_size+1);
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// add to btree
int err = lfsr_btree_push(&lfs, &btree,
weighted_bid, LFSR_TAG_INLINED, weight,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// add to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_weights[bid+1], &sim_weights[bid],
(sim_size-bid)*sizeof(lfs_size_t));
sim[bid] = alphas[i % 26];
sim_weights[bid] = 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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_bid+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
// update the tree
lfsr_btree_set(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("A", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
// update the tree
lfsr_btree_set(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("A", 1)) => 0;
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("B", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1,
LFSR_DATA("c", 1)) => 0;
// update the tree
lfsr_btree_set(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("A", 1)) => 0;
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("B", 1)) => 0;
lfsr_btree_set(&lfs, &btree, 2, LFSR_TAG_INLINED, 1,
LFSR_DATA("C", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "C", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
// update the tree
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_set(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == N);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &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
defines.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % N;
// update btree
int err = lfsr_btree_set(&lfs, &btree, bid, LFSR_TAG_INLINED, 1,
LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = 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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == N);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, N,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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++) {
int err = lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
// update the tree
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_set(&lfs, &btree, i*W+W-1, LFSR_TAG_INLINED, W,
LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == N*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < N; i++) {
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == i*W+W-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &uppers[i % 26], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 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.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % N;
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// update btree
int err = lfsr_btree_set(&lfs, &btree,
weighted_bid+sim_weights[bid]-1, LFSR_TAG_INLINED, weight,
LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = uppers[i % 26];
sim_weights[bid] = weight;
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_bid+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < N; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < N; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 0) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 0);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &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,
LFSR_DATA("A", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 1) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &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,
LFSR_DATA("B", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "B", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 0) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &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,
LFSR_DATA("A", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "A", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
lfsr_btree_push(&lfs, &btree, 2, LFSR_TAG_INLINED, 1,
LFSR_DATA("c", 1)) => 0;
// pop!
lfsr_btree_pop(&lfs, &btree, 2) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try looking up tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &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,
LFSR_DATA("C", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try looking up tags
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "a", 1) == 0);
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "b", 1) == 0);
lfsr_btree_get(&lfs, &btree, 2,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "C", 1) == 0);
lfsr_btree_get(&lfs, &btree, 3,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
int err = lfsr_btree_pop(&lfs, &btree, N-1-i);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == REMAINING);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, REMAINING, LFSR_TAG_INLINED, 1,
LFSR_DATA("R", 1)) => 0;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_get(&lfs, &btree, REMAINING+1,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
int err = lfsr_btree_pop(&lfs, &btree, 0);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == REMAINING);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("R", 1)) => 0;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &alphas[(i+(N-REMAINING)) % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING+1,
&tag_, &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.SEED = 'range(10)'
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a btree
lfsr_btree_t btree = LFSR_BTREE_NULL;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % sim_size;
// remove from btree
int err = lfsr_btree_pop(&lfs, &btree, bid);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// remove from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &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.W = 5
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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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++) {
int err = lfsr_btree_push(&lfs, &btree, i*W, LFSR_TAG_INLINED, W,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
// drain the tree
for (lfs_size_t i = 0; i < N-REMAINING; i++) {
int err = lfsr_btree_pop(&lfs, &btree, (N-1-i)*W+W-1);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 0);
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == REMAINING*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// try recovering
lfsr_btree_push(&lfs, &btree, REMAINING*W, LFSR_TAG_INLINED, W,
LFSR_DATA("R", 1)) => 0;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_get(&lfs, &btree, REMAINING*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_get(&lfs, &btree, (REMAINING+1)*W+W-1,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < REMAINING; i++) {
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == i*W+W-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &alphas[i % 26], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == REMAINING*W+W-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == W);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "R", 1) == 0);
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => LFS_ERR_NOENT;
'''
[cases.test_btree_pop_sparse_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.W = 5
defines.REMAINING = [64, 2, 1, 0]
defines.SEED = 'range(10)'
if = 'N > REMAINING'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
int err = lfsr_btree_push(&lfs, &btree,
weighted_bid, LFSR_TAG_INLINED, weight,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
return;
}
assert(err == 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % sim_size;
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// remove from btree
int err = lfsr_btree_pop(&lfs, &btree,
weighted_bid+sim_weights[bid]-1);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// remove from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+1));
memmove(&sim_weights[bid], &sim_weights[bid+1],
(sim_size-(bid+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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_bid+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA(&alphas[0 % 26], 1)) => 0;
lfs_size_t n = 1;
for (lfs_size_t i = 1; i < N; i++) {
int err = lfsr_btree_split(&lfs, &btree, i-1, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(&alphas[(i-1) % 26], 1),
LFSR_TAG_INLINED, 1, LFSR_DATA(&alphas[(i-0) % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_split_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
uint32_t prng = SEED;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random bid
lfs_size_t bid = TEST_PRNG(&prng) % sim_size;
// split btree
int err = lfsr_btree_split(&lfs, &btree, bid, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(&alphas[i % 26], 1),
LFSR_TAG_INLINED, 1, LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// split sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
sim[bid+0] = alphas[i % 26];
sim[bid+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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA(&alphas[0 % 26], 1)) => 0;
lfs_size_t n = 1;
for (lfs_size_t i = 1; i < N; i++) {
int err = lfsr_btree_split(&lfs, &btree, (i-1)*W+W-1, LFSR_DATA_NULL,
LFSR_TAG_INLINED, W, LFSR_DATA(&alphas[(i-1) % 26], 1),
LFSR_TAG_INLINED, W, LFSR_DATA(&alphas[(i-0) % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n*W);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i*W+W-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &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.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *uppers = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
sim_weights[0] = W;
uint32_t prng = SEED;
for (lfs_size_t i = 1; i < N; i++) {
// choose a pseudo-random bid
lfs_size_t bid = 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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// split btree
int err = lfsr_btree_split(&lfs, &btree,
weighted_bid+sim_weights[bid]-1, LFSR_DATA_NULL,
LFSR_TAG_INLINED, weight1,
LFSR_DATA(&alphas[i % 26], 1),
LFSR_TAG_INLINED, weight2,
LFSR_DATA(&uppers[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// add to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_weights[bid+1], &sim_weights[bid],
(sim_size-bid)*sizeof(lfs_size_t));
sim[bid+0] = alphas[i % 26];
sim[bid+1] = uppers[i % 26];
sim_weights[bid+0] = weight1;
sim_weights[bid+1] = weight2;
sim_size += 1;
// TODO rm
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
}
// check that btree matches sim
printf("expd: [");
bool first = true;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_bid+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => LFS_ERR_NOENT;
// clean up sim
free(sim);
'''
# Some specific corner cases
[cases.test_btree_drop]
# this should large enough so only one entry can fit in a block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.SIBLING = [0, 1]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// force it to split
// the extra push here avoids trying to inline the big entry
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("_", 1)) => 0;
uint8_t buf1[SIZE];
memset(buf1, 'a', SIZE);
uint8_t buf2[SIZE];
memset(buf2, 'b', SIZE);
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(buf1, SIZE),
LFSR_TAG_INLINED, 1, LFSR_DATA(buf2, SIZE)) => 0;
// force compaction
btree.u.r.rbyd.eoff = -1;
memset(buf2, 'b', SIZE);
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA(buf2, SIZE)) => 0;
assert(lfsr_btree_weight(&btree) == 2);
// now remove one entry, since this brings the rbyd down to zero,
// this should force one of the blocks to drop
lfsr_btree_pop(&lfs, &btree, SIBLING) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// check that our other entry is fine
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buf1, SIZE) => SIZE;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buf1, (SIBLING ? "a" : "b"), 1) == 0);
// and check that our pop worked
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buf1, SIZE) => LFS_ERR_NOENT;
'''
[cases.test_btree_drop_compact]
# this should large enough so only one entry can fit in a block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.SIBLING = [0, 1]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// force it to split
// the extra push here avoids trying to inline the big entry
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("_", 1)) => 0;
uint8_t buf1[SIZE];
memset(buf1, 'a', SIZE);
uint8_t buf2[SIZE];
memset(buf2, 'b', SIZE);
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(buf1, SIZE),
LFSR_TAG_INLINED, 1, LFSR_DATA(buf2, SIZE)) => 0;
// force compaction
btree.u.r.rbyd.eoff = -1;
memset(buf2, 'b', SIZE);
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA(buf2, SIZE)) => 0;
assert(lfsr_btree_weight(&btree) == 2);
// now remove one entry, since this brings the rbyd down this zero,
// this should force one of the blocks to drop
//
// do this while forcing a compaction
btree.u.r.rbyd.eoff = -1;
lfsr_btree_pop(&lfs, &btree, SIBLING) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// check that our other entry is fine
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buf1, SIZE) => SIZE;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buf1, (SIBLING ? "a" : "b"), 1) == 0);
// and check that our pop worked
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buf1, SIZE) => LFS_ERR_NOENT;
'''
[cases.test_btree_drop_split]
# this should large enough so only one entry can fit in a block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.SIBLING = [0, 1]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// force it to split
// the extra push here avoids trying to inline the big entry
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("_", 1)) => 0;
uint8_t buf1[SIZE];
memset(buf1, 'a', SIZE);
uint8_t buf2[SIZE];
memset(buf2, 'b', SIZE);
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(buf1, SIZE),
LFSR_TAG_INLINED, 1, LFSR_DATA(buf2, SIZE)) => 0;
// force compaction, causing a split, but while we're splitting,
// also remove an entry, bringing the split rbyd down to zero mid split
//
// messy, isn't it? this is why we need an explicit test
//
btree.u.r.rbyd.eoff = -1;
lfsr_btree_pop(&lfs, &btree, SIBLING) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// check that our other entry is fine
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buf1, SIZE) => SIZE;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buf1, (SIBLING ? "a" : "b"), 1) == 0);
// and check that our pop worked
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buf1, SIZE) => LFS_ERR_NOENT;
'''
[cases.test_btree_drop_merge]
# this should large enough so only one entry can fit in a block
defines.SIZE = 'BLOCK_SIZE / 4'
defines.SIBLING = [0, 1]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
// force it to split
// the extra push here avoids trying to inline the big entry
lfsr_btree_push(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("_", 1)) => 0;
uint8_t buf1[SIZE];
memset(buf1, 'a', SIZE);
uint8_t buf2[SIZE];
memset(buf2, 'b', SIZE);
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NULL,
LFSR_TAG_INLINED, 1, LFSR_DATA(buf1, SIZE),
LFSR_TAG_INLINED, 1, LFSR_DATA(buf2, SIZE)) => 0;
// force compaction
btree.u.r.rbyd.eoff = -1;
memset(buf2, 'b', SIZE);
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA(buf2, SIZE)) => 0;
assert(lfsr_btree_weight(&btree) == 2);
// now make both entries small so they should be merged if either compacts
lfsr_btree_set(&lfs, &btree, 0, LFSR_TAG_INLINED, 1,
LFSR_DATA("a", 1)) => 0;
lfsr_btree_set(&lfs, &btree, 1, LFSR_TAG_INLINED, 1,
LFSR_DATA("b", 1)) => 0;
// force compaction, while removing one entry, this drops the rbyd
// down to zero while also triggering a merge
btree.u.r.rbyd.eoff = -1;
lfsr_btree_pop(&lfs, &btree, SIBLING) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// check that our other entry is fine
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_btree_get(&lfs, &btree, 0,
&tag_, &weight_, buf1, SIZE) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buf1, (SIBLING ? "a" : "b"), 1) == 0);
// and check that our pop worked
lfsr_btree_get(&lfs, &btree, 1,
&tag_, &weight_, buf1, SIZE) => LFS_ERR_NOENT;
'''
# Some more general fuzz testing
[cases.test_btree_general_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
defines.SEED = 'range(100)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % (sim_size+1);
if (op == 0 || bid == sim_size) {
// push to btree
int err = lfsr_btree_push(&lfs, &btree, bid,
LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// push to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
sim[bid] = alphas[i % 26];
sim_size += 1;
} else if (op == 1) {
// update btree
int err = lfsr_btree_set(&lfs, &btree, bid,
LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = alphas[i % 26];
} else {
// pop from btree
int err = lfsr_btree_pop(&lfs, &btree, bid);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// pop from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &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.SEED = 'range(100)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % (sim_size+1);
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
if (op == 0 || bid == sim_size) {
// push to btree
int err = lfsr_btree_push(&lfs, &btree, weighted_bid,
LFSR_TAG_INLINED, weight,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// push to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_weights[bid+1], &sim_weights[bid],
(sim_size-bid)*sizeof(lfs_size_t));
sim[bid] = alphas[i % 26];
sim_weights[bid] = weight;
sim_size += 1;
} else if (op == 1) {
// update btree
int err = lfsr_btree_set(&lfs, &btree,
weighted_bid+sim_weights[bid]-1, LFSR_TAG_INLINED, weight,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = alphas[i % 26];
sim_weights[bid] = weight;
} else {
// remove from btree
int err = lfsr_btree_pop(&lfs, &btree,
weighted_bid+sim_weights[bid]-1);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// remove from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+1));
memmove(&sim_weights[bid], &sim_weights[bid+1],
(sim_size-(bid+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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%dw%d=%c", weighted_bid+sim_weights[i]-1,
sim_weights[i], sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_get(&lfs, &btree, weighted_bid+sim_weights[i]-1,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, total_weight,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// also test that we can traverse the tree without prior knowledge
lfs_size_t bid_ = -1;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => 0;
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
lfsr_btree_lookupnext(&lfs, &btree, bid_+1,
&bid_, &tag_, &weight_, &data_) => LFS_ERR_NOENT;
// clean up sim
free(sim);
'''
# test key-value btrees
[cases.test_btree_find_zero]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a zero-entry tree
lfsr_btree_t btree = LFSR_BTREE_NULL;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 0);
// try to find tags
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
lfsr_btree_namelookup(&lfs, &btree, 0, "aaa", 3,
&bid_, &tag_, &weight_, &data_) => LFS_ERR_NOENT;
'''
[cases.test_btree_find_one]
# true or false for if we should use dids vs names
defines.DID = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("0", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 1);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
lfsr_btree_namelookup(&lfs, &btree, 0*DID, "aaa", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 0);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 1*DID, "aab", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 0);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "0", 1) == 0);
'''
[cases.test_btree_find_two]
# true or false for if we should use dids vs names
defines.DID = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("0", 1)) => 0;
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NAME(0*DID, "aab", 3),
LFSR_TAG_INLINED, 1, LFSR_DATA("0", 1),
LFSR_TAG_INLINED, 1, LFSR_DATA("1", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 2);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
lfsr_btree_namelookup(&lfs, &btree, 0, "aaa", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 0);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 0, "aab", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 1);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 0, "aac", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 1);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "1", 1) == 0);
'''
[cases.test_btree_find_three]
in = 'lfs.c'
# true or false for if we should use dids vs names
defines.DID = [false, true]
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("0", 1)) => 0;
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NAME(1*DID, "aab", 3),
LFSR_TAG_INLINED, 1, LFSR_DATA("0", 1),
LFSR_TAG_INLINED, 1, LFSR_DATA("1", 1)) => 0;
lfsr_btree_split(&lfs, &btree, 1, LFSR_DATA_NAME(2*DID, "aac", 3),
LFSR_TAG_INLINED, 1, LFSR_DATA("1", 1),
LFSR_TAG_INLINED, 1, LFSR_DATA("2", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
lfsr_btree_namelookup(&lfs, &btree, 0*DID, "aaa", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 0);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 1*DID, "aab", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 1);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 2*DID, "aac", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 2);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "2", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 3*DID, "aad", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 2);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "2", 1) == 0);
'''
[cases.test_btree_find_three_backwards]
# true or false for if we should use dids vs names
defines.DID = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("0", 1)) => 0;
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NAME(2*DID, "aac", 3),
LFSR_TAG_INLINED, 1, LFSR_DATA("1", 1),
LFSR_TAG_INLINED, 1, LFSR_DATA("2", 1)) => 0;
lfsr_btree_split(&lfs, &btree, 0, LFSR_DATA_NAME(1*DID, "aab", 3),
LFSR_TAG_INLINED, 1, LFSR_DATA("0", 1),
LFSR_TAG_INLINED, 1, LFSR_DATA("1", 1)) => 0;
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == 3);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
lfsr_btree_namelookup(&lfs, &btree, 0*DID, "aaa", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 0);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "0", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 1*DID, "aab", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 1);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "1", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 2*DID, "aac", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 2);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "2", 1) == 0);
lfsr_btree_namelookup(&lfs, &btree, 3*DID, "aad", 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == 2);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, "2", 1) == 0);
'''
[cases.test_btree_find]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024]
# true or false for if we should use dids vs names
defines.DID = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA(&nums[0 % 10], 1)) => 0;
lfs_size_t n = 1;
for (lfs_size_t i = 1; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
int err = lfsr_btree_split(&lfs, &btree, i-1,
LFSR_DATA_NAME(i*DID, name, 3),
LFSR_TAG_INLINED, 1, LFSR_DATA(&nums[(i-1) % 10], 1),
LFSR_TAG_INLINED, 1, LFSR_DATA(&nums[(i-0) % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
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_namelookup(&lfs, &btree, i*DID, name, 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == i);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 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.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
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 bid = 0;
while (bid+1 < sim_size && memcmp(sim_names[bid+1], name, 3) <= 0) {
bid += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[bid], name, 3) == 0) {
continue;
}
// split btree
int err = lfsr_btree_split(&lfs, &btree, bid,
LFSR_DATA_NAME(0, name, 3),
LFSR_TAG_INLINED, 1, LFSR_DATA(&nums[i % 10], 1),
LFSR_TAG_INLINED, 1, LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// split sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_names[bid+1], &sim_names[bid], (sim_size-bid)*3);
sim[bid+0] = nums[i % 10];
sim[bid+1] = nums[i % 10];
memcpy(&sim_names[bid+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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_namelookup(&lfs, &btree, 0, sim_names[i], 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == i);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 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
# true or false for if we should use dids vs names
defines.DID = [false, true]
in = 'lfs.c'
code = '''
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA(&nums[0 % 10], 1)) => 0;
lfs_size_t n = 1;
for (lfs_size_t i = 1; i < N; i++) {
char name[3] = {
alphas[(i/26/26) % 26], alphas[(i/26) % 26], alphas[i % 26]
};
int err = lfsr_btree_split(&lfs, &btree,
(i-1)*W+W-1, LFSR_DATA_NAME(i*DID, name, 3),
LFSR_TAG_INLINED, W, LFSR_DATA(&nums[(i-1) % 10], 1),
LFSR_TAG_INLINED, W, LFSR_DATA(&nums[(i-0) % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n*W);
// try to find tags
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
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_namelookup(&lfs, &btree, i*DID, name, 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == i*W+W-1);
assert(weight_ == W);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
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.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
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 bid = 0;
while (bid+1 < sim_size && memcmp(sim_names[bid+1], name, 3) <= 0) {
bid += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[bid], name, 3) == 0) {
continue;
}
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// split btree
int err = lfsr_btree_split(&lfs, &btree,
weighted_bid+sim_weights[bid]-1,
LFSR_DATA_NAME(0, name, 3),
LFSR_TAG_INLINED, weight1, LFSR_DATA(&nums[i % 10], 1),
LFSR_TAG_INLINED, weight2, LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// split sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_names[bid+1], &sim_names[bid], (sim_size-bid)*3);
memmove(&sim_weights[bid+1], &sim_weights[bid],
(sim_size-bid)*sizeof(lfs_size_t));
sim[bid+0] = nums[i % 10];
sim[bid+1] = nums[i % 10];
memcpy(&sim_names[bid+1], name, 3);
sim_weights[bid+0] = weight1;
sim_weights[bid+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 bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%.3sid%dw%d=%c",
sim_names[i],
weighted_bid+sim_weights[i]-1,
sim_weights[i],
sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_namelookup(&lfs, &btree, 0, sim_names[i], 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
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.SEED = 'range(100)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
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 bid
lfs_size_t bid = 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
lfs_size_t bid = 0;
while (bid+1 < sim_size
&& memcmp(sim_names[bid+1], name, 3) <= 0) {
bid += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[bid], name, 3) == 0) {
continue;
}
// split btree
lfs_size_t split_bid;
lfsr_data_t split_data;
lfsr_btree_namelookup(&lfs, &btree, 0, name, 3,
&split_bid, NULL, NULL, &split_data) => 0;
uint8_t split_buf[4];
lfsr_data_read(&lfs, &split_data, split_buf, 4) => 1;
if (split_bid > bid) {
int err = lfsr_btree_split(&lfs, &btree,
split_bid,
LFSR_DATA_NAME(0, sim_names[bid+1], 3),
LFSR_TAG_INLINED, 1,
LFSR_DATA(&nums[i % 10], 1),
LFSR_TAG_INLINED, 1,
LFSR_DATA(split_buf, 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
} else {
int err = lfsr_btree_split(&lfs, &btree,
split_bid, LFSR_DATA_NAME(0, name, 3),
LFSR_TAG_INLINED, 1,
LFSR_DATA(split_buf, 1),
LFSR_TAG_INLINED, 1,
LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
}
// split sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_names[bid+1], &sim_names[bid], (sim_size-bid)*3);
sim[bid+1] = nums[i % 10];
memcpy(&sim_names[bid+1], name, 3);
sim_size += 1;
} else if (op == 1) {
// update btree
int err = lfsr_btree_set(&lfs, &btree, bid,
LFSR_TAG_INLINED, 1,
LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = nums[i % 10];
} else {
// pop from btree
int err = lfsr_btree_pop(&lfs, &btree, bid);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// pop from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+1));
memmove(&sim_names[bid], &sim_names[bid+1], (sim_size-(bid+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 (bid == 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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_namelookup(&lfs, &btree, 0, sim_names[i], 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == i);
assert(weight_ == 1);
lfsr_data_read(&lfs, &data_, buffer, 4) => 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.SEED = 'range(100)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
const char *nums = "0123456789";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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,
LFSR_DATA("_", 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] = '_';
memcpy(&sim_names[0], "___", 3);
sim_weights[0] = W;
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 bid
lfs_size_t bid = 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]
};
// choose a pseudo-random weight
lfs_size_t weight = 1 + (TEST_PRNG(&prng) % W);
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// don't let sim drop below one element
if (op == 0 || sim_size <= 1) {
// find where to split
lfs_size_t bid = 0;
while (bid+1 < sim_size
&& memcmp(sim_names[bid+1], name, 3) <= 0) {
bid += 1;
}
// just skip exact matches for now
if (memcmp(sim_names[bid], name, 3) == 0) {
continue;
}
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < bid; j++) {
weighted_bid += sim_weights[j];
}
// split btree
lfs_size_t split_bid;
lfs_size_t split_weight;
lfsr_data_t split_data;
lfsr_btree_namelookup(&lfs, &btree, 0, name, 3,
&split_bid, NULL, &split_weight,
&split_data) => 0;
uint8_t split_buf[4];
lfsr_data_read(&lfs, &split_data, split_buf, 4) => 1;
if (split_bid > weighted_bid+sim_weights[bid]-1) {
int err = lfsr_btree_split(&lfs, &btree,
split_bid, LFSR_DATA_NAME(0, sim_names[bid+1], 3),
LFSR_TAG_INLINED, weight,
LFSR_DATA(&nums[i % 10], 1),
LFSR_TAG_INLINED, split_weight,
LFSR_DATA(split_buf, 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
} else {
int err = lfsr_btree_split(&lfs, &btree,
split_bid, LFSR_DATA_NAME(0, name, 3),
LFSR_TAG_INLINED, split_weight,
LFSR_DATA(split_buf, 1),
LFSR_TAG_INLINED, weight,
LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
}
// split sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
memmove(&sim_names[bid+1], &sim_names[bid], (sim_size-bid)*3);
memmove(&sim_weights[bid+1], &sim_weights[bid],
(sim_size-bid)*sizeof(lfs_size_t));
sim[bid+1] = nums[i % 10];
memcpy(&sim_names[bid+1], name, 3);
sim_weights[bid+1] = weight;
sim_size += 1;
} else if (op == 1) {
// update btree
int err = lfsr_btree_set(&lfs, &btree,
weighted_bid+sim_weights[bid]-1, LFSR_TAG_INLINED, weight,
LFSR_DATA(&nums[i % 10], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// update sim
sim[bid] = nums[i % 10];
sim_weights[bid] = weight;
} else {
// pop from btree
int err = lfsr_btree_pop(&lfs, &btree,
weighted_bid+sim_weights[bid]-1);
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// pop from sim
memmove(&sim[bid], &sim[bid+1], sim_size-(bid+1));
memmove(&sim_names[bid], &sim_names[bid+1], (sim_size-(bid+1))*3);
memmove(&sim_weights[bid], &sim_weights[bid+1],
(sim_size-(bid+1))*sizeof(lfs_size_t));
sim_size -= 1;
// our B-tree doesn't actually track the name of id0, so we need
// mirror this in our sim
if (bid == 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++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
if (!first) {
printf(", ");
}
first = false;
printf("%.3sid%dw%d=%c",
sim_names[i],
weighted_bid+sim_weights[i]-1,
sim_weights[i],
sim[i]);
}
printf("]\n");
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
lfs_size_t total_weight = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
total_weight += sim_weights[j];
}
assert(lfsr_btree_weight(&btree) == total_weight);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t bid_;
lfs_size_t weight_;
lfsr_data_t data_;
for (lfs_size_t i = 0; i < sim_size; i++) {
// calculate actual bid in btree space
lfs_size_t weighted_bid = 0;
for (lfs_size_t j = 0; j < i; j++) {
weighted_bid += sim_weights[j];
}
lfsr_btree_namelookup(&lfs, &btree, 0, sim_names[i], 3,
&bid_, &tag_, &weight_, &data_) => 0;
assert(tag_ == LFSR_TAG_INLINED);
assert(bid_ == weighted_bid+sim_weights[i]-1);
assert(weight_ == sim_weights[i]);
lfsr_data_read(&lfs, &data_, buffer, 4) => 1;
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// clean up sim
free(sim);
free(sim_names);
free(sim_weights);
'''
## B-tree traversal tests ##
# some simple btree traversals
[cases.test_btree_traversal]
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.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 0;
lfs_alloc_ack(&lfs);
// create a tree with N elements
lfsr_btree_t btree = LFSR_BTREE_NULL;
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_size_t n = 0;
for (lfs_size_t i = 0; i < N; i++) {
int err = lfsr_btree_push(&lfs, &btree, i, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
n += 1;
}
printf("btree: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == n);
// check that the elements are in the tree
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// 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_btree_traversal_t traversal = LFSR_BTREE_TRAVERSAL;
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*N);
lfs_size_t bid_;
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_data_t data_;
int err = lfsr_btree_traversal_next(&lfs, &btree, &traversal,
&bid_, &tag_, &weight_, &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 0x%x w%d btree 0x%x.%x\n",
bid_,
tag_,
weight_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else {
printf("traversal: %d 0x%x w%d %d\n",
bid_,
tag_,
weight_,
lfsr_data_size(&data_));
}
}
// 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
// check that the elements are in the tree
for (lfs_size_t i = 0; i < n; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
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_, &weight_, buffer, 4) => LFS_ERR_NOENT;
'''
[cases.test_btree_traversal_fuzz]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
defines.SEED = 'range(10)'
in = 'lfs.c'
code = '''
const char *alphas = "abcdefghijklmnopqrstuvwxyz";
lfs_t lfs;
lfs_init(&lfs, CFG) => 0;
// create free lookahead
memset(lfs.lookahead.buffer, 0, CFG->lookahead_size);
lfs.lookahead.start = 0;
lfs.lookahead.size = lfs_min(8*CFG->lookahead_size,
CFG->block_count);
lfs.lookahead.next = 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 bid
lfs_size_t bid = TEST_PRNG(&prng) % (sim_size+1);
// add to btree
int err = lfsr_btree_push(&lfs, &btree, bid, LFSR_TAG_INLINED, 1,
LFSR_DATA(&alphas[i % 26], 1));
// ignore space issues
if (err == LFS_ERR_NOSPC) {
break;
}
assert(err == 0);
// add to sim
memmove(&sim[bid+1], &sim[bid], sim_size-bid);
sim[bid] = 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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
uint8_t buffer[4];
lfsr_tag_t tag_;
lfs_size_t weight_;
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// 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_btree_traversal_t traversal = LFSR_BTREE_TRAVERSAL;
for (lfs_block_t i = 0;; i++) {
// a bit hacky, but this catches infinite loops
assert(i < 2*N);
lfs_size_t bid_;
lfsr_tag_t tag_;
lfs_size_t weight_;
lfsr_data_t data_;
int err = lfsr_btree_traversal_next(&lfs, &btree, &traversal,
&bid_, &tag_, &weight_, &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 0x%x w%d btree 0x%x.%x\n",
bid_,
tag_,
weight_,
branch->block, branch->trunk);
// keep track of seen blocks
seen[branch->block / 8] |= 1 << (branch->block % 8);
} else {
printf("traversal: %d 0x%x w%d %d\n",
bid_,
tag_,
weight_,
lfsr_data_size(&data_));
}
}
// 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
// check that btree matches sim
printf("expd: [");
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: w%d 0x%x.%x\n",
btree.u.r.rbyd.weight,
btree.u.r.rbyd.block,
btree.u.r.rbyd.trunk);
assert(lfsr_btree_weight(&btree) == sim_size);
for (lfs_size_t i = 0; i < sim_size; i++) {
lfsr_btree_get(&lfs, &btree, i,
&tag_, &weight_, buffer, 4) => 1;
assert(tag_ == LFSR_TAG_INLINED);
assert(weight_ == 1);
assert(memcmp(buffer, &sim[i], 1) == 0);
}
// and no extra elements
lfsr_btree_get(&lfs, &btree, sim_size,
&tag_, &weight_, buffer, 4) => LFS_ERR_NOENT;
// clean up sim
free(sim);
lfs_deinit(&lfs) => 0;
'''