Files
littlefs/tests/test_relocations.toml
T
Christopher Haster acad3a3143 Added format flags to lfsr_format
This is mainly to solve the weird check-hole where passing CKPROGS/
CKREADS as mount flags has no effect on lfsr_format (I mean, it'd be a
bit silly if it did somehow):

  LFS_F_RDWR              0  // Format the filesystem as read and write
  LFS_F_CKPROGS  0x00000010  // Check progs by reading back progged data
  LFS_F_CKREADS  0x00000020  // Check reads via parity bits/checksums

This makes lfsr_format a more cumbersome interface, but I don't know if
this is necessarily a bad thing. There's always risk of data loss when
calling lfsr_format, so maybe it should be a pain to call.

At the very least, format flags may be useful in the future for
enabling/disabling format-time things such as the planned block-map,
parity-tree, etc. Though it's unclear if such significant settings
should be format flags or somehow encoded as fields in our config
struct.

---

The LFS_F_* format flags of course ended up conflicting with our
internal LFS_F_* flags, so I renamed most of the internal flags to match
the closest flag set they participate in:

- LFS_F_TYPE        -> LFS_O_TYPE
- LFS_F_UNFLUSH     -> LFS_O_UNFLUSH
- LFS_F_UNSYNC      -> LFS_O_UNSYNC
- LFS_F_ORPHAN      -> LFS_O_ORPHAN
- LFS_F_ZOMBIE      -> LFS_O_ZOMBIE

- LFS_F_ORPHANS     -> LFS_I_ORPHANS
- LFS_F_UNCOMPACTED -> LFS_I_UNCOMPACTED

- LFS_F_TSTATE      -> LFS_T_TSTATE
- LFS_F_BTYPE       -> LFS_T_BTYPE
- LFS_F_DIRTY       -> LFS_T_DIRTY
- LFS_F_MUTATED     -> LFS_T_MUTATED

This may make it a bit less clear which flags are a part of the public
API, vs intended only for internal use, but at the very least our asserts
in format/mount/open/etc should catch most of these mistakes.

---

Code cost ended up being pretty minimal. Actually negative. This is the
second time we're _adding_ a feature that somehow saves code, though the
reality for this one is we're really just pushing constants up into the
user's stack frame. Still, it's a good indication the cost of format
flags is small:

           code          stack
  before: 36452           2680
  after:  36448 (-0.0%)   2680 (+0.0%)
2024-08-16 01:04:13 -05:00

2219 lines
77 KiB
TOML

# Tests over block relocations and wear-leveling
after = [
'test_mtree',
'test_dirs',
'test_files',
'test_forphans',
'test_powerloss',
]
# Note that most of the delicate relocation operations are already tested
# in test_mtree. This mostly just covers high-level operations with
# relatively aggressive wear-leveling.
# dirs + relocations may create problems for gstate
[cases.test_relocations_dir_many]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256, 512]
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// make this many directories
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
sprintf(name, "dir%03x", i);
int err = lfsr_mkdir(&lfs, name);
assert(!err || (TEST_PLS && err == LFS_ERR_EXIST));
}
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// grm should be zero here
assert(lfs.grm_p[0] == 0);
// check that our mkdir worked
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
sprintf(name, "dir%03x", i);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
}
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "/") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
sprintf(name, "dir%03x", i);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
}
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
sprintf(name, "dir%03x", i);
lfsr_dir_open(&lfs, &dir, name) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
}
}
lfsr_unmount(&lfs) => 0;
'''
[cases.test_relocations_dir_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64, 128, 256]
defines.OPS = 1024
defines.SEED = 'range(10)'
fuzz = 'SEED'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// set up a simulation to compare against
lfs_size_t *sim = malloc(N*sizeof(lfs_size_t));
lfs_size_t sim_size = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < OPS; i++) {
// choose a pseudo-random op, either mkdir, remove, or rename
uint8_t op = TEST_PRNG(&prng) % 3;
if (op == 0 || sim_size == 0) {
// choose a pseudo-random number, truncate to 3 hexadecimals
lfs_size_t x = TEST_PRNG(&prng) % N;
// insert into our sim
for (lfs_size_t j = 0;; j++) {
if (j >= sim_size || sim[j] >= x) {
// already seen?
if (j < sim_size && sim[j] == x) {
// do nothing
} else {
// insert
memmove(&sim[j+1], &sim[j],
(sim_size-j)*sizeof(lfs_size_t));
sim_size += 1;
sim[j] = x;
}
break;
}
}
// create a directory here
char name[256];
sprintf(name, "dir%03x", x);
int err = lfsr_mkdir(&lfs, name);
assert(!err || err == LFS_ERR_EXIST);
} else if (op == 1) {
// choose a pseudo-random entry to delete
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
// delete from our sim
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
sim_size -= 1;
// remove this directory
char name[256];
sprintf(name, "dir%03x", x);
lfsr_remove(&lfs, name) => 0;
} else {
// choose a pseudo-random entry to rename, and a pseudo-random
// number to rename to
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
lfs_size_t y = TEST_PRNG(&prng) % N;
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= y) {
// already seen and not a noop?
if (k < sim_size && sim[k] == y && x != y) {
// just delete the original entry
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
sim_size -= 1;
} else {
// first delete
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
if (k > j) {
k -= 1;
}
// then insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
sim[k] = y;
}
break;
}
}
// rename this directory
char old_name[256];
sprintf(old_name, "dir%03x", x);
char new_name[256];
sprintf(new_name, "dir%03x", y);
lfsr_rename(&lfs, old_name, new_name) => 0;
}
}
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// grm should be zero here
assert(lfs.grm_p[0] == 0);
// test that our directories match our simulation
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "dir%03x", sim[j]);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
char name2[256];
sprintf(name2, "dir%03x", sim[j]);
assert(strcmp(info.name, name2) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
}
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "/") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "dir%03x", sim[j]);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
}
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
}
// clean up sim/lfs
free(sim);
lfsr_unmount(&lfs) => 0;
'''
# files + relocations may create problems for shrubs
[cases.test_relocations_file_many]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64]
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
if = '(SIZE*N)/BLOCK_SIZE <= 32'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// create this many files
uint32_t prng = 42;
for (lfs_size_t i = 0; i < N; i++) {
char name[256];
sprintf(name, "amethyst%03x", i);
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&prng) % 26);
}
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name,
LFS_O_WRONLY | LFS_O_CREAT | LFS_O_EXCL) => 0;
lfsr_file_write(&lfs, &file, wbuf, SIZE) => SIZE;
lfsr_file_close(&lfs, &file) => 0;
}
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// check that our writes worked
prng = 42;
for (lfs_size_t i = 0; i < N; i++) {
// check with stat
char name[256];
sprintf(name, "amethyst%03x", i);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
// try reading the file, note we reset prng above
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&prng) % 26);
}
lfsr_file_t file;
uint8_t rbuf[SIZE];
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
lfsr_file_close(&lfs, &file) => 0;
}
}
lfsr_unmount(&lfs) => 0;
'''
[cases.test_relocations_file_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64]
defines.OPS = 1024
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
defines.SEED = 'range(10)'
fuzz = 'SEED'
if = '(SIZE*N)/BLOCK_SIZE <= 16'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// set up a simulation to compare against
lfs_size_t *sim = malloc(N*sizeof(lfs_size_t));
uint32_t *sim_prngs = malloc(N*sizeof(uint32_t));
lfs_size_t sim_size = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < OPS; i++) {
// choose which operation to do
uint8_t op = TEST_PRNG(&prng) % 3;
// creating a new file?
if (op == 0 || sim_size == 0) {
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
// associate each file with a prng that generates its contents
uint32_t wprng = TEST_PRNG(&prng);
// insert into our sim
for (lfs_size_t j = 0;; j++) {
if (j >= sim_size || sim[j] >= x) {
// already seen?
if (j < sim_size && sim[j] == x) {
// new prng
sim_prngs[j] = wprng;
} else {
// insert
memmove(&sim[j+1], &sim[j],
(sim_size-j)*sizeof(lfs_size_t));
memmove(&sim_prngs[j+1], &sim_prngs[j],
(sim_size-j)*sizeof(uint32_t));
sim_size += 1;
sim[j] = x;
sim_prngs[j] = wprng;
}
break;
}
}
// create a file here
char name[256];
sprintf(name, "amethyst%03x", x);
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name,
LFS_O_WRONLY | LFS_O_CREAT | LFS_O_TRUNC) => 0;
lfsr_file_write(&lfs, &file, wbuf, SIZE) => SIZE;
lfsr_file_close(&lfs, &file) => 0;
// deleting a file?
} else if (op == 1) {
// choose a random file to delete
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
// delete from our sim
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
sim_size -= 1;
// delete this file
char name[256];
sprintf(name, "amethyst%03x", x);
lfsr_remove(&lfs, name) => 0;
// renaming a file?
} else {
// choose a random file to rename, and a random number to
// rename to
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
lfs_size_t y = TEST_PRNG(&prng) % N;
uint32_t wprng = sim_prngs[j];
// update our sim
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= y) {
// renaming and replacing
if (k < sim_size && sim[k] == y && x != y) {
// delete the original entry
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
sim_size -= 1;
if (k > j) {
k -= 1;
}
// update the prng
sim_prngs[k] = wprng;
// just renaming
} else {
// first delete
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
if (k > j) {
k -= 1;
}
// then insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
sim[k] = y;
sim_prngs[k] = wprng;
}
break;
}
}
// rename this file
char old_name[256];
sprintf(old_name, "amethyst%03x", x);
char new_name[256];
sprintf(new_name, "amethyst%03x", y);
lfsr_rename(&lfs, old_name, new_name) => 0;
}
}
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// check that our files match our simulation
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "amethyst%03x", sim[j]);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "/") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "amethyst%03x", sim[j]);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
// check the file contents
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "amethyst%03x", sim[j]);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
uint32_t wprng = sim_prngs[j];
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
lfsr_file_close(&lfs, &file) => 0;
}
}
// clean up sim/lfs
free(sim);
free(sim_prngs);
lfsr_unmount(&lfs) => 0;
'''
# open files + relocations may create problems for orphans/zombies
[cases.test_relocations_orphanzombie_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64]
defines.OPS = 1024
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
defines.SEED = 'range(10)'
fuzz = 'SEED'
if = '(SIZE*N)/BLOCK_SIZE <= 16'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// set up a simulation to compare against
lfs_size_t *sim = malloc(N*sizeof(lfs_size_t));
uint32_t *sim_prngs = malloc(N*sizeof(uint32_t));
lfs_size_t sim_size = 0;
typedef struct sim_file {
lfs_size_t x;
bool orphan;
bool zombie;
uint32_t prng;
lfsr_file_t file;
} sim_file_t;
sim_file_t **sim_files = malloc(N*sizeof(sim_file_t*));
lfs_size_t sim_file_count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < OPS; i++) {
nonsense:;
// choose which operation to do
uint8_t op = TEST_PRNG(&prng) % 5;
// open a new file?
if (op == 0) {
if (sim_file_count >= N) {
goto nonsense;
}
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
// already exists?
bool orphan = true;
uint32_t wprng = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
if (sim[j] == x) {
orphan = false;
wprng = sim_prngs[j];
break;
}
}
// choose a random seed if we don't exist
if (orphan) {
wprng = TEST_PRNG(&prng);
}
// open in our sim
lfs_size_t j = sim_file_count;
sim_files[j] = malloc(sizeof(sim_file_t));
sim_files[j]->x = x;
sim_files[j]->orphan = orphan;
sim_files[j]->zombie = false;
sim_files[j]->prng = wprng;
sim_file_count++;
// open the actual file
char name[256];
sprintf(name, "batman%03x", x);
lfsr_file_open(&lfs, &sim_files[j]->file, name,
LFS_O_RDWR | LFS_O_CREAT) => 0;
// write some initial data if we don't exist
if (orphan) {
uint8_t wbuf[SIZE];
for (lfs_size_t k = 0; k < SIZE; k++) {
wbuf[k] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_write(&lfs, &sim_files[j]->file, wbuf, SIZE) => SIZE;
}
// write/rewrite a file?
} else if (op == 1) {
if (sim_file_count == 0) {
goto nonsense;
}
// choose a random file handle
lfs_size_t j = TEST_PRNG(&prng) % sim_file_count;
lfs_size_t x = sim_files[j]->x;
// choose a random seed
uint32_t wprng = TEST_PRNG(&prng);
// update sim
sim_files[j]->prng = wprng;
if (!sim_files[j]->zombie) {
// insert into our sim
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= x) {
// already seen?
if (k < sim_size && sim[k] == x) {
// new prng
sim_prngs[k] = wprng;
} else {
// insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
sim_size += 1;
sim[k] = x;
sim_prngs[k] = wprng;
}
break;
}
}
// update related sim files
for (lfs_size_t k = 0; k < sim_file_count; k++) {
if (sim_files[k]->x == x && !sim_files[k]->zombie) {
sim_files[k]->orphan = false;
sim_files[k]->prng = wprng;
}
}
}
// write to the file
lfsr_file_rewind(&lfs, &sim_files[j]->file) => 0;
uint8_t wbuf[SIZE];
for (lfs_size_t k = 0; k < SIZE; k++) {
wbuf[k] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_write(&lfs, &sim_files[j]->file, wbuf, SIZE) => SIZE;
lfsr_file_sync(&lfs, &sim_files[j]->file)
=> (!sim_files[j]->zombie) ? 0 : LFS_ERR_NOENT;
// close a file?
} else if (op == 2) {
if (sim_file_count == 0) {
goto nonsense;
}
// choose a random file handle
lfs_size_t j = TEST_PRNG(&prng) % sim_file_count;
// this doesn't really test anything, but if we don't close
// files eventually everything will end up zombies
// close the file without affected disk
lfsr_file_desync(&lfs, &sim_files[j]->file) => 0;
lfsr_file_close(&lfs, &sim_files[j]->file) => 0;
// remove from list
free(sim_files[j]);
sim_files[j] = sim_files[sim_file_count-1];
sim_file_count -= 1;
// remove a file?
} else if (op == 3) {
if (sim_size == 0) {
goto nonsense;
}
// choose a random file to delete
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
// delete from our sim
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
sim_size -= 1;
// mark any related sim files as zombied
for (lfs_size_t k = 0; k < sim_file_count; k++) {
if (sim_files[k]->x == x) {
sim_files[k]->zombie = true;
}
}
// delete this file
char name[256];
sprintf(name, "batman%03x", x);
lfsr_remove(&lfs, name) => 0;
// rename a file?
} else if (op == 4) {
if (sim_size == 0) {
goto nonsense;
}
// choose a random file to rename, and a random number to
// rename to
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
lfs_size_t y = TEST_PRNG(&prng) % N;
uint32_t wprng = sim_prngs[j];
// update our sim
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= y) {
// renaming and replacing
if (k < sim_size && sim[k] == y && x != y) {
// delete the original entry
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
sim_size -= 1;
if (k > j) {
k -= 1;
}
// update the prng
sim_prngs[k] = wprng;
// just renaming
} else {
// first delete
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
if (k > j) {
k -= 1;
}
// then insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
sim[k] = y;
sim_prngs[k] = wprng;
}
break;
}
}
// update any related sim files
for (lfs_size_t k = 0; k < sim_file_count; k++) {
// move source files
if (sim_files[k]->x == x) {
sim_files[k]->x = y;
// mark target files as zombied
} else if (sim_files[k]->x == y) {
sim_files[k]->zombie = true;
}
}
// rename this file
char old_name[256];
sprintf(old_name, "batman%03x", x);
char new_name[256];
sprintf(new_name, "batman%03x", y);
lfsr_rename(&lfs, old_name, new_name) => 0;
}
}
// check that disk matches our simulation
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "/") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, name) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
uint32_t wprng = sim_prngs[j];
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
lfsr_file_close(&lfs, &file) => 0;
}
// check that our file handles match our simulation
for (lfs_size_t j = 0; j < sim_file_count; j++) {
uint32_t wprng = sim_files[j]->prng;
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_rewind(&lfs, &sim_files[j]->file) => 0;
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &sim_files[j]->file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
}
// clean up sim/lfs
free(sim);
free(sim_prngs);
for (lfs_size_t j = 0; j < sim_file_count; j++) {
lfsr_file_close(&lfs, &sim_files[j]->file) => 0;
free(sim_files[j]);
}
free(sim_files);
lfsr_unmount(&lfs) => 0;
'''
# open files + dirs + relocations can cause so many problems it's not worth
# listing them
[cases.test_relocations_orphanzombiedir_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64]
defines.OPS = 1024
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
defines.SEED = 'range(10)'
fuzz = 'SEED'
if = '(SIZE*N)/BLOCK_SIZE <= 16'
code = '''
lfs_t lfs;
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
// set up a simulation to compare against
lfs_size_t *sim = malloc(N*sizeof(lfs_size_t));
uint32_t *sim_prngs = malloc(N*sizeof(uint32_t));
bool *sim_isdirs = malloc(N*sizeof(bool));
lfs_size_t sim_size = 0;
typedef struct sim_file {
lfs_size_t x;
bool orphan;
bool zombie;
uint32_t prng;
lfsr_file_t file;
} sim_file_t;
sim_file_t **sim_files = malloc(N*sizeof(sim_file_t*));
lfs_size_t sim_file_count = 0;
uint32_t prng = SEED;
for (lfs_size_t i = 0; i < OPS; i++) {
nonsense:;
// choose which operation to do
uint8_t op = TEST_PRNG(&prng) % 8;
// open a new file?
if (op == 0) {
if (sim_file_count >= N) {
goto nonsense;
}
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
// already exists?
bool orphan = true;
uint32_t wprng = 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
if (sim[j] == x) {
if (sim_isdirs[j]) {
goto nonsense;
}
orphan = false;
wprng = sim_prngs[j];
break;
}
}
// choose a random seed if we don't exist
if (orphan) {
wprng = TEST_PRNG(&prng);
}
// open in our sim
lfs_size_t j = sim_file_count;
sim_files[j] = malloc(sizeof(sim_file_t));
sim_files[j]->x = x;
sim_files[j]->orphan = orphan;
sim_files[j]->zombie = false;
sim_files[j]->prng = wprng;
sim_file_count++;
// open the actual file
char name[256];
sprintf(name, "batman%03x", x);
lfsr_file_open(&lfs, &sim_files[j]->file, name,
LFS_O_RDWR | LFS_O_CREAT) => 0;
// write some initial data if we don't exist
if (orphan) {
uint8_t wbuf[SIZE];
for (lfs_size_t k = 0; k < SIZE; k++) {
wbuf[k] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_write(&lfs, &sim_files[j]->file, wbuf, SIZE) => SIZE;
}
// write/rewrite a file?
} else if (op == 1) {
if (sim_file_count == 0) {
goto nonsense;
}
// choose a random file handle
lfs_size_t j = TEST_PRNG(&prng) % sim_file_count;
lfs_size_t x = sim_files[j]->x;
// choose a random seed
uint32_t wprng = TEST_PRNG(&prng);
// update sim
sim_files[j]->prng = wprng;
if (!sim_files[j]->zombie) {
// insert into our sim
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= x) {
// already seen?
if (k < sim_size && sim[k] == x) {
// new prng
sim_prngs[k] = wprng;
} else {
// insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
memmove(&sim_isdirs[k+1], &sim_isdirs[k],
(sim_size-k)*sizeof(bool));
sim_size += 1;
sim[k] = x;
sim_prngs[k] = wprng;
sim_isdirs[k] = false;
}
break;
}
}
// update related sim files
for (lfs_size_t k = 0; k < sim_file_count; k++) {
if (sim_files[k]->x == x && !sim_files[k]->zombie) {
sim_files[k]->orphan = false;
sim_files[k]->prng = wprng;
}
}
}
// write to the file
lfsr_file_rewind(&lfs, &sim_files[j]->file) => 0;
uint8_t wbuf[SIZE];
for (lfs_size_t k = 0; k < SIZE; k++) {
wbuf[k] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_write(&lfs, &sim_files[j]->file, wbuf, SIZE) => SIZE;
lfsr_file_sync(&lfs, &sim_files[j]->file)
=> (!sim_files[j]->zombie) ? 0 : LFS_ERR_NOENT;
// close a file?
} else if (op == 2) {
if (sim_file_count == 0) {
goto nonsense;
}
// choose a random file handle
lfs_size_t j = TEST_PRNG(&prng) % sim_file_count;
// this doesn't really test anything, but if we don't close
// files eventually everything will end up zombies
// close the file without affected disk
lfsr_file_desync(&lfs, &sim_files[j]->file) => 0;
lfsr_file_close(&lfs, &sim_files[j]->file) => 0;
// remove from list
free(sim_files[j]);
sim_files[j] = sim_files[sim_file_count-1];
sim_file_count -= 1;
// remove a file?
} else if (op == 3) {
if (sim_size == 0) {
goto nonsense;
}
// choose a random file to delete
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
// delete from our sim
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
memmove(&sim_isdirs[j], &sim_isdirs[j+1],
(sim_size-(j+1))*sizeof(bool));
sim_size -= 1;
// mark any related sim files as zombied
for (lfs_size_t k = 0; k < sim_file_count; k++) {
if (sim_files[k]->x == x) {
sim_files[k]->zombie = true;
}
}
// delete this file
char name[256];
sprintf(name, "batman%03x", x);
lfsr_remove(&lfs, name) => 0;
// rename a file?
} else if (op == 4) {
if (sim_size == 0) {
goto nonsense;
}
// choose a random file to rename, and a random number to
// rename to
lfs_size_t j = TEST_PRNG(&prng) % sim_size;
lfs_size_t x = sim[j];
lfs_size_t y = TEST_PRNG(&prng) % N;
uint32_t wprng = sim_prngs[j];
bool isdir = sim_isdirs[j];
// update our sim
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= y) {
// renaming and replacing
if (k < sim_size && sim[k] == y && x != y) {
// type mismatch?
if (sim_isdirs[k] != isdir) {
goto nonsense;
}
// delete the original entry
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
memmove(&sim_isdirs[j], &sim_isdirs[j+1],
(sim_size-(j+1))*sizeof(bool));
sim_size -= 1;
if (k > j) {
k -= 1;
}
// update the prng
sim_prngs[k] = wprng;
// just renaming
} else {
// first delete
memmove(&sim[j], &sim[j+1],
(sim_size-(j+1))*sizeof(lfs_size_t));
memmove(&sim_prngs[j], &sim_prngs[j+1],
(sim_size-(j+1))*sizeof(uint32_t));
memmove(&sim_isdirs[j], &sim_isdirs[j+1],
(sim_size-(j+1))*sizeof(bool));
if (k > j) {
k -= 1;
}
// then insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
memmove(&sim_isdirs[k+1], &sim_isdirs[k],
(sim_size-k)*sizeof(bool));
sim[k] = y;
sim_prngs[k] = wprng;
sim_isdirs[k] = isdir;
}
break;
}
}
// update any related sim files
for (lfs_size_t k = 0; k < sim_file_count; k++) {
// move source files
if (sim_files[k]->x == x) {
sim_files[k]->x = y;
// mark target files as zombied
} else if (sim_files[k]->x == y) {
sim_files[k]->zombie = true;
}
}
// rename this file
char old_name[256];
sprintf(old_name, "batman%03x", x);
char new_name[256];
sprintf(new_name, "batman%03x", y);
lfsr_rename(&lfs, old_name, new_name) => 0;
// toss a directory into the mix
} else if (op == 5) {
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
// insert into our sim, use negative numbers for dirs
for (lfs_size_t k = 0;; k++) {
if (k >= sim_size || sim[k] >= x) {
// already seen?
if (k < sim_size && sim[k] == x) {
goto nonsense;
} else {
// insert
memmove(&sim[k+1], &sim[k],
(sim_size-k)*sizeof(lfs_size_t));
memmove(&sim_prngs[k+1], &sim_prngs[k],
(sim_size-k)*sizeof(uint32_t));
memmove(&sim_isdirs[k+1], &sim_isdirs[k],
(sim_size-k)*sizeof(bool));
sim_size += 1;
sim[k] = x;
sim_prngs[k] = 0;
sim_isdirs[k] = true;
}
break;
}
}
// mark any related sim files as zombied
for (lfs_size_t k = 0; k < sim_file_count; k++) {
if (sim_files[k]->x == x) {
sim_files[k]->zombie = true;
}
}
// make the directory
char name[256];
sprintf(name, "batman%03x", x);
lfsr_mkdir(&lfs, name) => 0;
}
}
// check that disk matches our simulation
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
struct lfs_info info;
lfsr_stat(&lfs, name, &info) => 0;
assert(strcmp(info.name, name) == 0);
if (sim_isdirs[j]) {
assert(info.type == LFS_TYPE_DIR);
} else {
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
}
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "/") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
for (lfs_size_t j = 0; j < sim_size; j++) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, name) == 0);
if (sim_isdirs[j]) {
assert(info.type == LFS_TYPE_DIR);
} else {
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
}
}
lfsr_dir_read(&lfs, &dir, &info) => LFS_ERR_NOENT;
lfsr_dir_close(&lfs, &dir) => 0;
for (lfs_size_t j = 0; j < sim_size; j++) {
if (sim_isdirs[j]) {
char name[256];
sprintf(name, "batman%03x", sim[j]);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => LFS_ERR_ISDIR;
} else {
char name[256];
sprintf(name, "batman%03x", sim[j]);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
uint32_t wprng = sim_prngs[j];
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
lfsr_file_close(&lfs, &file) => 0;
}
}
// check that our file handles match our simulation
for (lfs_size_t j = 0; j < sim_file_count; j++) {
uint32_t wprng = sim_files[j]->prng;
uint8_t wbuf[SIZE];
for (lfs_size_t j = 0; j < SIZE; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
}
lfsr_file_rewind(&lfs, &sim_files[j]->file) => 0;
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &sim_files[j]->file, rbuf, SIZE) => SIZE;
assert(memcmp(rbuf, wbuf, SIZE) == 0);
}
// clean up sim/lfs
free(sim);
free(sim_prngs);
for (lfs_size_t j = 0; j < sim_file_count; j++) {
lfsr_file_close(&lfs, &sim_files[j]->file) => 0;
free(sim_files[j]);
}
free(sim_files);
lfsr_unmount(&lfs) => 0;
'''
# and don't forget potential powerloss problems
# A general purpose powerloss fuzz test
#
#
# Under powerloss, we can't really keep track of a sim reliably/
# efficiently, instead just do random operations, store a counter in a
# special file so we know how much progress has been made, and hope for
# the best. Most likely an internal assert will trigger if anything goes
# wrong.
#
[cases.test_relocations_file_pl_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
defines.N = [1, 2, 4, 8, 16, 32, 64]
defines.OPS = 256
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
defines.SEED = 'range(10)'
fuzz = 'SEED'
if = '(SIZE*N)/BLOCK_SIZE <= 16'
reentrant = true
code = '''
// format once per test
lfs_t lfs;
int err = lfsr_mount(&lfs, LFS_M_RDWR, CFG);
if (err) {
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// keep some test state on disk to survive powerloss
typedef struct fuzz_state {
lfs_size_t i;
uint32_t prng;
} fuzz_state_t;
fuzz_state_t state = {.i = 0, .prng = SEED};
lfsr_file_t state_file;
lfsr_file_open(&lfs, &state_file, "state", LFS_O_RDWR | LFS_O_CREAT) => 0;
lfs_ssize_t d = lfsr_file_read(&lfs, &state_file, &state, sizeof(state));
assert(d == 0 || d == sizeof(state));
// keep test files in a separate directory
err = lfsr_mkdir(&lfs, "test");
assert(!err || err == LFS_ERR_EXIST);
uint32_t prng = state.prng;
for (lfs_size_t i = state.i; i < OPS; i++) {
// choose which operation to do
uint8_t op = TEST_PRNG(&prng) % 3;
// how many files do we have?
lfs_size_t count = 0;
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "test") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
while (true) {
int err = lfsr_dir_read(&lfs, &dir, &info);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info.name) == strlen("amethyst..."));
assert(memcmp(info.name, "amethyst", strlen("amethyst")) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
count++;
}
lfsr_dir_close(&lfs, &dir) => 0;
// creating a new file?
if (op == 0 || count == 0) {
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
uint32_t wprng = TEST_PRNG(&prng);
// create a file here
char name[256];
sprintf(name, "test/amethyst%03x", x);
uint8_t wbuf[SIZE];
uint8_t ck = 0;
for (lfs_size_t j = 0; j < SIZE-1; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
ck = (ck + (wbuf[j] - 'a')) % 26;
}
// make the sum equal to 'a' mod 26
if (SIZE > 0) {
wbuf[SIZE-1] = 'a' + ((26 - ck) % 26);
}
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name,
LFS_O_WRONLY | LFS_O_CREAT | LFS_O_TRUNC) => 0;
lfsr_file_write(&lfs, &file, wbuf, SIZE) => SIZE;
lfsr_file_close(&lfs, &file) => 0;
// deleting a file?
} else if (op == 1) {
// choose a random file to delete
lfs_size_t j = TEST_PRNG(&prng) % count;
// find the file
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// delete this file
char name[256];
assert(strlen(info.name) == strlen("amethyst..."));
sprintf(name, "test/%s", info.name);
lfsr_remove(&lfs, name) => 0;
// renaming a file?
} else {
// choose a random file to rename, and a random number to
// rename to
lfs_size_t j = TEST_PRNG(&prng) % count;
lfs_size_t y = TEST_PRNG(&prng) % N;
// find the file
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// rename this file
char old_name[256];
assert(strlen(info.name) == strlen("amethyst..."));
sprintf(old_name, "test/%s", info.name);
char new_name[256];
sprintf(new_name, "test/amethyst%03x", y);
lfsr_rename(&lfs, old_name, new_name) => 0;
}
// update our state file
state.i = i;
state.prng = prng;
lfsr_file_rewind(&lfs, &state_file) => 0;
lfsr_file_write(&lfs, &state_file, &state, sizeof(state))
=> sizeof(state);
lfsr_file_sync(&lfs, &state_file) => 0;
}
// go ahead and close our state file in case we remount
lfsr_file_close(&lfs, &state_file) => 0;
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// check that things look more-or-less ok
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "test") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
while (true) {
int err = lfsr_dir_read(&lfs, &dir, &info);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info.name) == strlen("amethyst..."));
assert(memcmp(info.name, "amethyst", strlen("amethyst")) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
// at least try to read the files
char name[256];
sprintf(name, "test/%s", info.name);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
// all data should be lowercase ascii
for (lfs_size_t j = 0; j < SIZE; j++) {
assert(rbuf[j] >= 'a' && rbuf[j] <= 'z');
}
// sum should be equal to 'a' mod 26
uint8_t ck = 0;
for (lfs_size_t j = 0; j < SIZE; j++) {
ck = (ck + (rbuf[j] - 'a')) % 26;
}
assert(ck == 0);
lfsr_file_close(&lfs, &file) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
}
lfsr_unmount(&lfs) => 0;
'''
# A general purpose powerloss fuzz test, with directories!
#
# Under powerloss, we can't really keep track of a sim reliably/
# efficiently, instead just do random operations, store a counter in a
# special file so we know how much progress has been made, and hope for
# the best. Most likely an internal assert will trigger if anything goes
# wrong.
#
[cases.test_relocations_filedir_pl_fuzz]
defines.BLOCK_RECYCLES = [4, 1, 0]
# note dirs x files grows O(n^2)
defines.N = [1, 2, 4, 8]
defines.M = 'N'
defines.OPS = 256
defines.SIZE = [
'0',
'FILE_BUFFER_SIZE/2',
'2*FILE_BUFFER_SIZE',
'BLOCK_SIZE/2',
'BLOCK_SIZE',
'2*BLOCK_SIZE',
'4*BLOCK_SIZE',
]
defines.SEED = 'range(10)'
fuzz = 'SEED'
if = '(SIZE*N)/BLOCK_SIZE <= 16'
reentrant = true
code = '''
// format once per test
lfs_t lfs;
int err = lfsr_mount(&lfs, LFS_M_RDWR, CFG);
if (err) {
lfsr_format(&lfs, LFS_F_RDWR, CFG) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// keep some test state on disk to survive powerloss
typedef struct fuzz_state {
lfs_size_t i;
uint32_t prng;
} fuzz_state_t;
fuzz_state_t state = {.i = 0, .prng = SEED};
lfsr_file_t state_file;
lfsr_file_open(&lfs, &state_file, "state", LFS_O_RDWR | LFS_O_CREAT) => 0;
lfs_ssize_t d = lfsr_file_read(&lfs, &state_file, &state, sizeof(state));
assert(d == 0 || d == sizeof(state));
// keep test files in a separate directory
err = lfsr_mkdir(&lfs, "test");
assert(!err || err == LFS_ERR_EXIST);
uint32_t prng = state.prng;
for (lfs_size_t i = state.i; i < OPS; i++) {
// choose which operation to do
uint8_t op = TEST_PRNG(&prng) % 6;
// how many dirs do we have?
lfs_size_t dir_count = 0;
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "test") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
while (true) {
int err = lfsr_dir_read(&lfs, &dir, &info);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info.name) == strlen("quartz..."));
assert(memcmp(info.name, "quartz", strlen("quartz")) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
dir_count++;
}
lfsr_dir_close(&lfs, &dir) => 0;
// dir op?
if (op < 3 || dir_count == 0) {
// creating a new dir?
if (op == 0 || dir_count == 0) {
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % N;
// create a dir here
char name[256];
sprintf(name, "test/quartz%03x", x);
int err = lfsr_mkdir(&lfs, name);
assert(!err || err == LFS_ERR_EXIST);
// deleting a dir?
} else if (op == 1) {
// choose a random dir to delete
lfs_size_t j = TEST_PRNG(&prng) % dir_count;
// find the dir
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// try to delete this dir, ignore non-empty dirs!
char name[256];
assert(strlen(info.name) == strlen("quartz..."));
sprintf(name, "test/%s", info.name);
int err = lfsr_remove(&lfs, name);
assert(!err || err == LFS_ERR_NOTEMPTY);
// renaming a dir?
} else {
// choose a random dir to rename, and a random number to
// rename to
lfs_size_t j = TEST_PRNG(&prng) % dir_count;
lfs_size_t y = TEST_PRNG(&prng) % N;
// find the dir
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// rename this dir, ignore conflicts!
char old_name[256];
assert(strlen(info.name) == strlen("quartz..."));
sprintf(old_name, "test/%s", info.name);
char new_name[256];
sprintf(new_name, "test/quartz%03x", y);
int err = lfsr_rename(&lfs, old_name, new_name);
assert(!err || err == LFS_ERR_NOTEMPTY);
}
// file op?
} else {
// choose a pseudo-random dir
lfs_size_t dir_i = TEST_PRNG(&prng) % dir_count;
// find the dir
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= dir_i; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
char dir_path[256];
sprintf(dir_path, "test/%s", info.name);
// how many files do we have?
lfs_size_t count = 0;
lfsr_dir_open(&lfs, &dir, dir_path) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
while (true) {
int err = lfsr_dir_read(&lfs, &dir, &info);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info.name) == strlen("amethyst..."));
assert(memcmp(
info.name,
"amethyst", strlen("amethyst")) == 0);
assert(info.type == LFS_TYPE_REG);
assert(info.size == SIZE);
count++;
}
lfsr_dir_close(&lfs, &dir) => 0;
// creating a new file?
if (op == 3 || count == 0) {
// choose a pseudo-random number
lfs_size_t x = TEST_PRNG(&prng) % M;
uint32_t wprng = TEST_PRNG(&prng);
// create a file here
char name[256];
sprintf(name, "%s/amethyst%03x", dir_path, x);
uint8_t wbuf[SIZE];
uint8_t ck = 0;
for (lfs_size_t j = 0; j < SIZE-1; j++) {
wbuf[j] = 'a' + (TEST_PRNG(&wprng) % 26);
ck = (ck + (wbuf[j] - 'a')) % 26;
}
// make the sum equal to 'a' mod 26
if (SIZE > 0) {
wbuf[SIZE-1] = 'a' + ((26 - ck) % 26);
}
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name,
LFS_O_WRONLY | LFS_O_CREAT | LFS_O_TRUNC) => 0;
lfsr_file_write(&lfs, &file, wbuf, SIZE) => SIZE;
lfsr_file_close(&lfs, &file) => 0;
// deleting a file?
} else if (op == 4) {
// choose a random file to delete
lfs_size_t j = TEST_PRNG(&prng) % count;
// find the file
lfsr_dir_open(&lfs, &dir, dir_path) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// delete this file
char name[256];
assert(strlen(info.name) == strlen("amethyst..."));
sprintf(name, "%s/%s", dir_path, info.name);
lfsr_remove(&lfs, name) => 0;
// renaming a file?
} else {
// choose a random file to rename
lfs_size_t j = TEST_PRNG(&prng) % count;
// find the file
lfsr_dir_open(&lfs, &dir, dir_path) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
lfsr_dir_read(&lfs, &dir, &info) => 0;
for (lfs_size_t k = 0; k <= j; k++) {
lfsr_dir_read(&lfs, &dir, &info) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// choose a random dir to rename to
lfs_size_t dir_j = TEST_PRNG(&prng) % dir_count;
// find the dir
struct lfs_info info_;
lfsr_dir_open(&lfs, &dir, "test") => 0;
lfsr_dir_read(&lfs, &dir, &info_) => 0;
lfsr_dir_read(&lfs, &dir, &info_) => 0;
for (lfs_size_t k = 0; k <= dir_j; k++) {
lfsr_dir_read(&lfs, &dir, &info_) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
// choose a random file to rename to
lfs_size_t y = TEST_PRNG(&prng) % M;
// rename this file
char old_name[256];
assert(strlen(info.name) == strlen("amethyst..."));
sprintf(old_name, "%s/%s", dir_path, info.name);
char new_name[256];
sprintf(new_name, "test/%s/amethyst%03x", info_.name, y);
lfsr_rename(&lfs, old_name, new_name) => 0;
}
}
// update our state file
state.i = i;
state.prng = prng;
lfsr_file_rewind(&lfs, &state_file) => 0;
lfsr_file_write(&lfs, &state_file, &state, sizeof(state))
=> sizeof(state);
lfsr_file_sync(&lfs, &state_file) => 0;
}
// go ahead and close our state file in case we remount
lfsr_file_close(&lfs, &state_file) => 0;
for (int remount = 0; remount < 2; remount++) {
// remount?
if (remount) {
lfsr_unmount(&lfs) => 0;
lfsr_mount(&lfs, LFS_M_RDWR, CFG) => 0;
}
// check that things look more-or-less ok
lfsr_dir_t dir;
lfsr_dir_open(&lfs, &dir, "test") => 0;
struct lfs_info info;
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, ".") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
lfsr_dir_read(&lfs, &dir, &info) => 0;
assert(strcmp(info.name, "..") == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
while (true) {
int err = lfsr_dir_read(&lfs, &dir, &info);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info.name) == strlen("quartz..."));
assert(memcmp(info.name, "quartz", strlen("quartz")) == 0);
assert(info.type == LFS_TYPE_DIR);
assert(info.size == 0);
// check that our dirs look more-or-less ok
char name[256];
sprintf(name, "test/%s", info.name);
lfsr_dir_t dir_;
lfsr_dir_open(&lfs, &dir_, name) => 0;
struct lfs_info info_;
lfsr_dir_read(&lfs, &dir_, &info_) => 0;
assert(strcmp(info_.name, ".") == 0);
assert(info_.type == LFS_TYPE_DIR);
assert(info_.size == 0);
lfsr_dir_read(&lfs, &dir_, &info_) => 0;
assert(strcmp(info_.name, "..") == 0);
assert(info_.type == LFS_TYPE_DIR);
assert(info_.size == 0);
while (true) {
err = lfsr_dir_read(&lfs, &dir_, &info_);
assert(!err || err == LFS_ERR_NOENT);
if (err == LFS_ERR_NOENT) {
break;
}
assert(strlen(info_.name) == strlen("amethyst..."));
assert(memcmp(
info_.name,
"amethyst", strlen("amethyst")) == 0);
assert(info_.type == LFS_TYPE_REG);
assert(info_.size == SIZE);
// at least try to read the files
sprintf(name, "test/%s/%s", info.name, info_.name);
lfsr_file_t file;
lfsr_file_open(&lfs, &file, name, LFS_O_RDONLY) => 0;
uint8_t rbuf[SIZE];
lfsr_file_read(&lfs, &file, rbuf, SIZE) => SIZE;
// all data should be lowercase ascii
for (lfs_size_t j = 0; j < SIZE; j++) {
assert(rbuf[j] >= 'a' && rbuf[j] <= 'z');
}
// sum should be equal to 'a' mod 26
uint8_t ck = 0;
for (lfs_size_t j = 0; j < SIZE; j++) {
ck = (ck + (rbuf[j] - 'a')) % 26;
}
assert(ck == 0);
lfsr_file_close(&lfs, &file) => 0;
}
lfsr_dir_close(&lfs, &dir_) => 0;
}
lfsr_dir_close(&lfs, &dir) => 0;
}
lfsr_unmount(&lfs) => 0;
'''
## specific corner cases worth explicitly testing for
#[cases.test_relocations_dangling_split_dir]
#defines.ITERATIONS = 20
#defines.COUNT = 10
#defines.BLOCK_CYCLES = [8, 1]
#code = '''
# lfs_t lfs;
# lfs_format(&lfs, cfg) => 0;
# // fill up filesystem so only ~16 blocks are left
# lfs_mount(&lfs, cfg) => 0;
# lfs_file_t file;
# lfs_file_open(&lfs, &file, "padding", LFS_O_CREAT | LFS_O_WRONLY) => 0;
# uint8_t buffer[512];
# memset(buffer, 0, 512);
# while (BLOCK_COUNT - lfs_fs_size(&lfs) > 16) {
# lfs_file_write(&lfs, &file, buffer, 512) => 512;
# }
# lfs_file_close(&lfs, &file) => 0;
# // make a child dir to use in bounded space
# lfs_mkdir(&lfs, "child") => 0;
# lfs_unmount(&lfs) => 0;
#
# lfs_mount(&lfs, cfg) => 0;
# for (unsigned j = 0; j < ITERATIONS; j++) {
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_file_open(&lfs, &file, path, LFS_O_CREAT | LFS_O_WRONLY) => 0;
# lfs_file_close(&lfs, &file) => 0;
# }
#
# lfs_dir_t dir;
# struct lfs_info info;
# lfs_dir_open(&lfs, &dir, "child") => 0;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "test%03d_loooooooooooooooooong_name", i);
# lfs_dir_read(&lfs, &dir, &info) => 1;
# strcmp(info.name, path) => 0;
# }
# lfs_dir_read(&lfs, &dir, &info) => 0;
# lfs_dir_close(&lfs, &dir) => 0;
#
# if (j == (unsigned)ITERATIONS-1) {
# break;
# }
#
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_remove(&lfs, path) => 0;
# }
# }
# lfs_unmount(&lfs) => 0;
#
# lfs_mount(&lfs, cfg) => 0;
# lfs_dir_t dir;
# struct lfs_info info;
# lfs_dir_open(&lfs, &dir, "child") => 0;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "test%03d_loooooooooooooooooong_name", i);
# lfs_dir_read(&lfs, &dir, &info) => 1;
# strcmp(info.name, path) => 0;
# }
# lfs_dir_read(&lfs, &dir, &info) => 0;
# lfs_dir_close(&lfs, &dir) => 0;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_remove(&lfs, path) => 0;
# }
# lfs_unmount(&lfs) => 0;
#'''
#
#[cases.test_relocations_outdated_head]
#defines.ITERATIONS = 20
#defines.COUNT = 10
#defines.BLOCK_CYCLES = [8, 1]
#code = '''
# lfs_t lfs;
# lfs_format(&lfs, cfg) => 0;
# // fill up filesystem so only ~16 blocks are left
# lfs_mount(&lfs, cfg) => 0;
# lfs_file_t file;
# lfs_file_open(&lfs, &file, "padding", LFS_O_CREAT | LFS_O_WRONLY) => 0;
# uint8_t buffer[512];
# memset(buffer, 0, 512);
# while (BLOCK_COUNT - lfs_fs_size(&lfs) > 16) {
# lfs_file_write(&lfs, &file, buffer, 512) => 512;
# }
# lfs_file_close(&lfs, &file) => 0;
# // make a child dir to use in bounded space
# lfs_mkdir(&lfs, "child") => 0;
# lfs_unmount(&lfs) => 0;
#
# lfs_mount(&lfs, cfg) => 0;
# for (unsigned j = 0; j < ITERATIONS; j++) {
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_file_open(&lfs, &file, path, LFS_O_CREAT | LFS_O_WRONLY) => 0;
# lfs_file_close(&lfs, &file) => 0;
# }
#
# lfs_dir_t dir;
# struct lfs_info info;
# lfs_dir_open(&lfs, &dir, "child") => 0;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "test%03d_loooooooooooooooooong_name", i);
# lfs_dir_read(&lfs, &dir, &info) => 1;
# strcmp(info.name, path) => 0;
# info.size => 0;
#
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_file_open(&lfs, &file, path, LFS_O_WRONLY) => 0;
# lfs_file_write(&lfs, &file, "hi", 2) => 2;
# lfs_file_close(&lfs, &file) => 0;
# }
# lfs_dir_read(&lfs, &dir, &info) => 0;
#
# lfs_dir_rewind(&lfs, &dir) => 0;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "test%03d_loooooooooooooooooong_name", i);
# lfs_dir_read(&lfs, &dir, &info) => 1;
# strcmp(info.name, path) => 0;
# info.size => 2;
#
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_file_open(&lfs, &file, path, LFS_O_WRONLY) => 0;
# lfs_file_write(&lfs, &file, "hi", 2) => 2;
# lfs_file_close(&lfs, &file) => 0;
# }
# lfs_dir_read(&lfs, &dir, &info) => 0;
#
# lfs_dir_rewind(&lfs, &dir) => 0;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# lfs_dir_read(&lfs, &dir, &info) => 1;
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "test%03d_loooooooooooooooooong_name", i);
# lfs_dir_read(&lfs, &dir, &info) => 1;
# strcmp(info.name, path) => 0;
# info.size => 2;
# }
# lfs_dir_read(&lfs, &dir, &info) => 0;
# lfs_dir_close(&lfs, &dir) => 0;
#
# for (unsigned i = 0; i < COUNT; i++) {
# char path[1024];
# sprintf(path, "child/test%03d_loooooooooooooooooong_name", i);
# lfs_remove(&lfs, path) => 0;
# }
# }
# lfs_unmount(&lfs) => 0;
#'''
#
## reentrant testing for relocations, this is the same as the
## orphan testing, except here we also set block_cycles so that
## almost every tree operation needs a relocation
#[cases.test_relocations_reentrant]
#reentrant = true
## TODO fix this case, caused by non-DAG trees
## NOTE the second condition is required
#if = '!(DEPTH == 3 && CACHE_SIZE != 64) && 2*FILES < BLOCK_COUNT'
#defines = [
# {FILES=6, DEPTH=1, CYCLES=20, BLOCK_CYCLES=1},
# {FILES=26, DEPTH=1, CYCLES=20, BLOCK_CYCLES=1},
# {FILES=3, DEPTH=3, CYCLES=20, BLOCK_CYCLES=1},
#]
#code = '''
# lfs_t lfs;
# int err = lfs_mount(&lfs, cfg);
# if (err) {
# lfs_format(&lfs, cfg) => 0;
# lfs_mount(&lfs, cfg) => 0;
# }
#
# uint32_t prng = 1;
# const char alpha[] = "abcdefghijklmnopqrstuvwxyz";
# for (unsigned i = 0; i < CYCLES; i++) {
# // create random path
# char full_path[256];
# for (unsigned d = 0; d < DEPTH; d++) {
# sprintf(&full_path[2*d], "/%c", alpha[TEST_PRNG(&prng) % FILES]);
# }
#
# // if it does not exist, we create it, else we destroy
# struct lfs_info info;
# int res = lfs_stat(&lfs, full_path, &info);
# if (res == LFS_ERR_NOENT) {
# // create each directory in turn, ignore if dir already exists
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# err = lfs_mkdir(&lfs, path);
# assert(!err || err == LFS_ERR_EXIST);
# }
#
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# lfs_stat(&lfs, path, &info) => 0;
# assert(strcmp(info.name, &path[2*d+1]) == 0);
# assert(info.type == LFS_TYPE_DIR);
# }
# } else {
# // is valid dir?
# assert(strcmp(info.name, &full_path[2*(DEPTH-1)+1]) == 0);
# assert(info.type == LFS_TYPE_DIR);
#
# // try to delete path in reverse order, ignore if dir is not empty
# for (unsigned d = DEPTH-1; d+1 > 0; d--) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# err = lfs_remove(&lfs, path);
# assert(!err || err == LFS_ERR_NOTEMPTY);
# }
#
# lfs_stat(&lfs, full_path, &info) => LFS_ERR_NOENT;
# }
# }
# lfs_unmount(&lfs) => 0;
#'''
#
## reentrant testing for relocations, but now with random renames!
#[cases.test_relocations_reentrant_renames]
#reentrant = true
## TODO fix this case, caused by non-DAG trees
## NOTE the second condition is required
#if = '!(DEPTH == 3 && CACHE_SIZE != 64) && 2*FILES < BLOCK_COUNT'
#defines = [
# {FILES=6, DEPTH=1, CYCLES=20, BLOCK_CYCLES=1},
# {FILES=26, DEPTH=1, CYCLES=20, BLOCK_CYCLES=1},
# {FILES=3, DEPTH=3, CYCLES=20, BLOCK_CYCLES=1},
#]
#code = '''
# lfs_t lfs;
# int err = lfs_mount(&lfs, cfg);
# if (err) {
# lfs_format(&lfs, cfg) => 0;
# lfs_mount(&lfs, cfg) => 0;
# }
#
# uint32_t prng = 1;
# const char alpha[] = "abcdefghijklmnopqrstuvwxyz";
# for (unsigned i = 0; i < CYCLES; i++) {
# // create random path
# char full_path[256];
# for (unsigned d = 0; d < DEPTH; d++) {
# sprintf(&full_path[2*d], "/%c", alpha[TEST_PRNG(&prng) % FILES]);
# }
#
# // if it does not exist, we create it, else we destroy
# struct lfs_info info;
# int res = lfs_stat(&lfs, full_path, &info);
# assert(!res || res == LFS_ERR_NOENT);
# if (res == LFS_ERR_NOENT) {
# // create each directory in turn, ignore if dir already exists
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# err = lfs_mkdir(&lfs, path);
# assert(!err || err == LFS_ERR_EXIST);
# }
#
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# lfs_stat(&lfs, path, &info) => 0;
# assert(strcmp(info.name, &path[2*d+1]) == 0);
# assert(info.type == LFS_TYPE_DIR);
# }
# } else {
# assert(strcmp(info.name, &full_path[2*(DEPTH-1)+1]) == 0);
# assert(info.type == LFS_TYPE_DIR);
#
# // create new random path
# char new_path[256];
# for (unsigned d = 0; d < DEPTH; d++) {
# sprintf(&new_path[2*d], "/%c", alpha[TEST_PRNG(&prng) % FILES]);
# }
#
# // if new path does not exist, rename, otherwise destroy
# res = lfs_stat(&lfs, new_path, &info);
# assert(!res || res == LFS_ERR_NOENT);
# if (res == LFS_ERR_NOENT) {
# // stop once some dir is renamed
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(&path[2*d], &full_path[2*d]);
# path[2*d+2] = '\0';
# strcpy(&path[128+2*d], &new_path[2*d]);
# path[128+2*d+2] = '\0';
# err = lfs_rename(&lfs, path, path+128);
# assert(!err || err == LFS_ERR_NOTEMPTY);
# if (!err) {
# strcpy(path, path+128);
# }
# }
#
# for (unsigned d = 0; d < DEPTH; d++) {
# char path[1024];
# strcpy(path, new_path);
# path[2*d+2] = '\0';
# lfs_stat(&lfs, path, &info) => 0;
# assert(strcmp(info.name, &path[2*d+1]) == 0);
# assert(info.type == LFS_TYPE_DIR);
# }
#
# lfs_stat(&lfs, full_path, &info) => LFS_ERR_NOENT;
# } else {
# // try to delete path in reverse order,
# // ignore if dir is not empty
# for (unsigned d = DEPTH-1; d+1 > 0; d--) {
# char path[1024];
# strcpy(path, full_path);
# path[2*d+2] = '\0';
# err = lfs_remove(&lfs, path);
# assert(!err || err == LFS_ERR_NOTEMPTY);
# }
#
# lfs_stat(&lfs, full_path, &info) => LFS_ERR_NOENT;
# }
# }
# }
# lfs_unmount(&lfs) => 0;
#'''