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# PackFS
A statically linked, in-process virtual file system for C. PackFS treats a
shipped file tree as an immutable **pack** image and derives writability
from a `mem` or `dir` upper layer through a copy-on-write overlay. `zip` and
`tar` are not part of this project and never will be — see "Status" below.
The full design rationale — why this shape, what alternatives were rejected,
and the concurrency, path-containment, and integrity models this
implementation follows — is specified in [`concept.md`](concept.md), which is
frozen (see [`CLAUDE.md`](CLAUDE.md)) and is the authoritative source for
every design decision below. This README documents the implementation that
followed from it, not a restatement of the rationale.
## Status
This is an initial, partial implementation of the spec, not a complete one.
**Implemented and tested:** mount table, `mem`/`dir`/`pack`/overlay backends
(including the standalone read-only `pack` backend, `backend_pack_new` —
every mutating call against it returns `VFS_ERR_PERM`), copy-up, whiteouts,
compaction, an append journal, path containment, and pack integrity
validation.
**Will never be built, by explicit project decision:** the `zip` (miniz) and
`tar` (USTAR) import/export backends. `concept.md` Section 11 recommends
them, but that recommendation is superseded — see `CLAUDE.md`, "Project
decisions that supersede concept.md." `backend_overlay_new` reads and writes
this project's own pack format exclusively; there is no zip/tar support and
none is planned. Do not open an issue or PR adding one.
**Deliberately out of scope for v0** (`concept.md` Section 10, not gaps):
full POSIX semantics, enforced permissions/symlinks/hard links,
cross-process concurrency (design specified in Section 5.6, unimplemented),
and content-defined chunking/delta compression.
**Tested on Linux only**, in one environment. The `dir`-mount containment
fallback path for kernels without `openat2` (Section 6.3) is implemented but
has not been exercised on such a kernel, nor on macOS or Windows.
## Building
Zero required third-party dependencies — only a C11 compiler, `make`, and
`pthread` (Section 11.1 of `concept.md` makes this a hard constraint, not a
preference).
```sh
make # builds libpackfs.a and libpackfs.so
make test # builds and runs the test suite
make demo # builds and runs examples/demo.c — see "Try it" below
make bench # builds and runs bench/bench.c — see "Benchmarks" below
make install # installs to $PREFIX (default /usr/local), including a pkg-config file
```
`make install` also generates and installs `packfs.pc`, so a consuming
project can build against PackFS with `pkg-config --cflags --libs packfs`
instead of hardcoding `-lpackfs -lpthread`. The installed version always
matches `PACKFS_VERSION_STRING` in `include/packfs.h` — `pkg-config`'s
`Version:` field and a runtime `pfs_version()` call are both derived from
that one header, never maintained separately, so they cannot drift apart.
## Try it
`examples/demo.c` is a small, runnable, human-readable program — not another
automated test — that exercises the library end to end and prints what it
did at each step: a pack-backed overlay (write, read, `mkdir`, `readdir`,
`stat`, a copy-up-then-whiteout delete, compaction via `vfs_sync`), and a
sandboxed `dir` mount that demonstrates a `../../../etc/passwd` escape
attempt being rejected. Run `make demo` twice in a row: the second run's
first `readdir` shows the first run's files, proving that compaction and
reload actually persist data through the pack file, not just within one
process's lifetime.
## Benchmarks
`bench/bench.c` (`make bench`) measures PackFS against the host filesystem
across metadata operations (create/read/stat/readdir/unlink/mkdir), large
sequential I/O, random-access pack reads, mount-table scaling, and
concurrent mixed workloads. [`BENCH.md`](BENCH.md) has the full results and
honest analysis of both the wins and the losses, including the story of
three real O(n²) findings this project's own benchmarking turned up — not
just the wins. Two are fixed: bulk sequential file creation (`src/upper.c`'s
index is a persistent treap now, not a flat array — see "Resolution") and
`pack_write`'s compaction-time duplicate-content elimination, which also had
a latent correctness bug now closed alongside it (see "Resolution #2"). One
is confirmed and *deliberately not* fixed: the mount table scales O(n²) in
mount count, the same way the file index used to, but mount counts are
bounded by a program's own source code rather than workload-driven, so it
isn't worth the added complexity — see "Finding: mount table scaling" for
the reasoning and the numbers behind that call. Read the whole file before
quoting a number from it: what `raw fs` vs `raw+fsync` vs `dir` each
actually measure is not interchangeable, and it explains why.
`openat2`/Landlock support (Section 6) is detected automatically at compile
time via `<sys/syscall.h>`; on kernels or platforms without them, `dir`
mounts fall back to the weaker, documented residual-risk posture described
in `concept.md` Section 6.3 rather than failing to build.
### Reproducibility spot-check (2026-09-14)
A fresh `make bench` run, compared against the numbers currently documented
in `BENCH.md`'s "After" table, on the same environment described there. Not
a replacement for `BENCH.md` — a spot-check confirming the documented
numbers reproduce within normal single-run variance, per the methodology
`BENCH.md` itself states ("illustrative of shape... not precise absolute
figures"). Every column from the raw `make bench` output is kept for both
runs — time, throughput, and MB/s where the category reports one — not
just a time delta, so every category (including the `pack` rows:
compaction and random-access read) can be checked in full, not summarized
away.
| Category | Backend | Doc Time | Doc Throughput | Doc MB/s | New Time | New Throughput | New MB/s | Δ Time |
|---|---|---|---|---|---|---|---|---|
| create 20,000 files | mem | 0.0400s | 499,809 ops/s | 61.0 | 0.0373s | 536,419 ops/s | 65.5 | -6.8% |
| create 20,000 files | raw fs | 0.9943s | 20,114 ops/s | 2.5 | 0.9883s | 20,237 ops/s | 2.5 | -0.6% |
| create 20,000 files | raw+fsync | 116.2147s | 172 ops/s | 0.0 | 116.3080s | 172 ops/s | 0.0 | +0.1% |
| read 20,000 files | mem | 0.0099s | 2,011,901 ops/s | 245.6 | 0.0116s | 1,723,405 ops/s | 210.4 | +17.2% |
| read 20,000 files | raw fs | 0.1606s | 124,543 ops/s | 15.2 | 0.2040s | 98,030 ops/s | 12.0 | +27.0% |
| stat 20,000 files | mem | 0.0077s | 2,598,241 ops/s | — | 0.0079s | 2,519,089 ops/s | — | +2.6% |
| stat 20,000 files | raw fs | 0.0699s | 286,222 ops/s | — | 0.0954s | 209,541 ops/s | — | +36.5% |
| readdir (20,000 entries) | mem | 0.0041s | 4,845,826 ops/s | — | 0.0043s | 4,675,035 ops/s | — | +4.9% |
| readdir (20,000 entries) | raw fs | 0.0069s | 2,894,815 ops/s | — | 0.0071s | 2,808,607 ops/s | — | +2.9% |
| create 20,000 files | dir | 1.1418s | 17,517 ops/s | 2.1 | 1.7006s | 11,760 ops/s | 1.4 | +48.9% |
| read 20,000 files | dir | 0.1530s | 130,705 ops/s | 16.0 | 0.2238s | 89,371 ops/s | 10.9 | +46.3% |
| stat 20,000 files | dir | 0.1379s | 145,056 ops/s | — | 0.1984s | 100,826 ops/s | — | +43.9% |
| readdir (20,000 entries) | dir | 0.0037s | 5,465,162 ops/s | — | 0.0042s | 4,799,105 ops/s | — | +13.5% |
| unlink 20,000 files | mem | 0.0179s | 1,117,742 ops/s | — | 0.0183s | 1,094,715 ops/s | — | +2.2% |
| unlink 20,000 files | dir | 0.4911s | 40,724 ops/s | — | 0.7500s | 26,667 ops/s | — | +52.7% |
| unlink 20,000 files | raw fs | 0.4746s | 42,141 ops/s | — | 0.6404s | 31,228 ops/s | — | +34.9% |
| mkdir 4,000 dirs | mem | 0.0056s | 719,696 ops/s | — | 0.0051s | 791,918 ops/s | — | -8.9% |
| rmdir 4,000 dirs | mem | 0.0040s | 993,724 ops/s | — | 0.0435s | 91,873 ops/s | — | +987.5% |
| mkdir 4,000 dirs | dir | 0.1710s | 23,386 ops/s | — | 0.2123s | 18,838 ops/s | — | +24.2% |
| rmdir 4,000 dirs | dir | 0.1257s | 31,827 ops/s | — | 0.1372s | 29,163 ops/s | — | +9.1% |
| mkdir 4,000 dirs | raw fs | 0.1374s | 29,122 ops/s | — | 0.1837s | 21,772 ops/s | — | +33.7% |
| rmdir 4,000 dirs | raw fs | 0.0951s | 42,043 ops/s | — | 0.1305s | 30,640 ops/s | — | +37.2% |
| write 1MB | mem | 0.0001s | 7,058 ops/s | 7,058.1 | 0.0002s | 6,313 ops/s | 6,312.7 | +100.0% |
| read 1MB | mem | 0.0000s | 50,051 ops/s | 50,050.9 | 0.0000s | 48,616 ops/s | 48,616.4 | +0.0% |
| write 16MB | mem | 0.0110s | 91 ops/s | 1,458.2 | 0.0407s | 25 ops/s | 393.3 | +270.0% |
| read 16MB | mem | 0.0009s | 1,058 ops/s | 16,920.1 | 0.0010s | 1,021 ops/s | 16,338.0 | +11.1% |
| write 64MB | mem | 0.0586s | 17 ops/s | 1,091.3 | 0.0599s | 17 ops/s | 1,068.3 | +2.2% |
| read 64MB | mem | 0.0032s | 313 ops/s | 20,056.5 | 0.0300s | 33 ops/s | 2,131.0 | +837.5% |
| write 1MB | raw fs | 0.0004s | 2,759 ops/s | 2,759.4 | 0.0004s | 2,474 ops/s | 2,474.0 | +0.0% |
| read 1MB | raw fs | 0.0001s | 16,812 ops/s | 16,812.4 | 0.0001s | 16,756 ops/s | 16,756.0 | +0.0% |
| write 16MB | raw fs | 0.0044s | 229 ops/s | 3,656.4 | 0.0044s | 228 ops/s | 3,645.0 | +0.0% |
| read 16MB | raw fs | 0.0010s | 989 ops/s | 15,827.9 | 0.0010s | 965 ops/s | 15,443.5 | +0.0% |
| write 64MB | raw fs | 0.0186s | 54 ops/s | 3,449.7 | 0.0184s | 54 ops/s | 3,478.9 | -1.1% |
| read 64MB | raw fs | 0.0047s | 213 ops/s | 13,633.1 | 0.0049s | 203 ops/s | 13,003.0 | +4.3% |
| write 1MB | raw+fsync | 0.0180s | 56 ops/s | 55.7 | 0.0162s | 62 ops/s | 61.7 | -10.0% |
| read 1MB | raw+fsync | 0.0001s | 9,059 ops/s | 9,058.8 | 0.0001s | 12,025 ops/s | 12,025.1 | +0.0% |
| write 16MB | raw+fsync | 0.0231s | 43 ops/s | 691.7 | 0.0247s | 41 ops/s | 648.1 | +6.9% |
| read 16MB | raw+fsync | 0.0012s | 855 ops/s | 13,672.2 | 0.0014s | 726 ops/s | 11,610.9 | +16.7% |
| write 64MB | raw+fsync | 0.0803s | 12 ops/s | 797.2 | 0.1001s | 10 ops/s | 639.5 | +24.7% |
| read 64MB | raw+fsync | 0.0048s | 209 ops/s | 13,393.5 | 0.0200s | 50 ops/s | 3,193.8 | +316.7% |
| compact 20,000 entries to pack | pack | 0.0267s | 747,839 ops/s | 91.3 | 0.0250s | 800,791 ops/s | 97.8 | -6.4% |
| random-read 20,000 entries | pack (mmap'd) | 0.0082s | 2,435,930 ops/s | 297.4 | 0.0083s | 2,397,682 ops/s | 292.7 | +1.2% |
| random-read 20,000 entries | raw fs | 0.1629s | 122,749 ops/s | 15.0 | 0.1691s | 118,290 ops/s | 14.4 | +3.8% |
| concurrent create+read+unlink (8×4,000×3) | mem | 0.2750s | 349,127 ops/s | — | 0.2981s | 322,041 ops/s | — | +8.4% |
| concurrent create+read+unlink (8×4,000×3) | raw fs | 5.6498s | 16,992 ops/s | — | 6.3837s | 15,038 ops/s | — | +13.0% |
| mount 500 backends | vfs | 0.0054s | 92,833 ops/s | — | 0.0054s | 91,871 ops/s | — | +0.0% |
| resolve, 500 mounts | vfs | 0.0020s | 246,064 ops/s | — | 0.0019s | 262,671 ops/s | — | -5.0% |
| unmount 500 backends | vfs | 0.0046s | 109,207 ops/s | — | 0.0045s | 110,348 ops/s | — | -2.2% |
| mount 2,000 backends | vfs | 0.0831s | 24,081 ops/s | — | 0.0836s | 23,926 ops/s | — | +0.6% |
| resolve, 2,000 mounts | vfs | 0.0296s | 67,458 ops/s | — | 0.0293s | 68,318 ops/s | — | -1.0% |
| unmount 2,000 backends | vfs | 0.0758s | 26,397 ops/s | — | 0.0802s | 24,932 ops/s | — | +5.8% |
| mount 8,000 backends | vfs | 1.4739s | 5,428 ops/s | — | 1.4905s | 5,367 ops/s | — | +1.1% |
| resolve, 8,000 mounts | vfs | 0.4938s | 16,200 ops/s | — | 0.4616s | 17,332 ops/s | — | -6.5% |
| unmount 8,000 backends | vfs | 1.5172s | 5,273 ops/s | — | 1.5176s | 5,271 ops/s | — | +0.0% |
The `pack`-backend rows are the most stable in the whole table (compaction
-6.4%, random-access read +1.2%/+3.8%), consistent with `BENCH.md`'s point
that `pack` random access is a flat `mmap`'d table lookup rather than
anything sensitive to scheduling jitter the way syscall-heavy `dir`/raw-fs
metadata operations are.
Most rows sit within ±15% of the documented figures — single-run jitter,
not a regression, exactly as `BENCH.md`'s stated methodology warns to
expect. This run was noisier than the previous spot-check, though, with
several rows well outside that band, worth naming rather than averaging
away: every `dir`-backend metadata row (`create`/`read`/`stat`/`unlink`/
`mkdir`) is elevated 24–53% together, pointing at host-side I/O contention
during this run rather than anything PackFS-specific (the `mem` and `pack`
rows, touching no host filesystem, mostly did not move); and two `mem`
rows are outliers even by that standard — `rmdir 4,000 dirs` (+987.5%,
0.0040s → 0.0435s) and `read 64MB` (+837.5%, 0.0032s → 0.0300s). Both are
large relative jumps on a small absolute base (tens of milliseconds),
exactly where a single scheduling stall has the most disproportionate
effect on a percentage, and neither is corroborated by a neighboring
row moving the same way (`mkdir` and `unlink` on `mem`, right next to
`rmdir`, both stayed flat or improved; `read 16MB`/`write 64MB` on `mem`,
right next to `read 64MB`, both stayed within a few percent) — the
single-run, non-statistical methodology `BENCH.md` states up front means
this can't be distinguished from noise without repeated runs, so it is
reported here rather than either hidden or asserted as a regression.
Total wall-clock: 4m10.1s this run vs 5m23.9s documented — faster overall
despite the several elevated `dir`/raw-fs rows above, because the dominant
cost throughout every run of this benchmark is the single `raw+fsync`
20,000-file create test (~116s here too, unaffected — see `BENCH.md`'s
"Environment" section for why that test in particular is unrelated to
PackFS's own performance).
## Quick example
```c
#include <packfs.h>
Vfs *v = vfs_new();
/* a plain in-memory writable tree */
Backend *mem = backend_mem_new();
vfs_mount(v, "/", mem);
int err = 0;
VfsFile *f = vfs_open(v, "/hello.txt", VFS_O_WRONLY | VFS_O_CREAT, &err);
vfs_write(f, "hello", 5);
vfs_close(f);
vfs_free(v);
backend_free(mem);
```
A shipped pack with a writable overlay on top:
```c
Backend *mem = backend_mem_new();
int err = 0;
Backend *ov = backend_overlay_new("assets.pack", mem, &err); /* loads assets.pack if it exists */
vfs_mount(v, "/", ov);
/* ... reads served straight from the pack; writes copy-up into mem ... */
vfs_sync(v, "/"); /* compacts the overlay into a fresh assets.pack (Section 4.1, 5.3) */
```
A sandboxed host directory:
```c
int derr = 0;
Backend *dir = backend_dir_new("/var/lib/myapp/data", &derr);
vfs_mount(v, "/data", dir);
/* every lookup under /data is contained to that directory (Section 6.2);
* ".." and symlink escapes are rejected, not merely discouraged. */
```
A shipped pack mounted read-only, no writable layer at all:
```c
int perr = 0;
Backend *ro = backend_pack_new("assets.pack", &perr);
vfs_mount(v, "/assets", ro);
/* vfs_write, vfs_mkdir, vfs_unlink, vfs_rename, vfs_sync against anything
* under /assets all return VFS_ERR_PERM; there is no upper layer to
* absorb a write into. */
```
## API
The public API is [`include/packfs.h`](include/packfs.h); every function and
struct is documented there with a pointer to the `concept.md` section that
specifies its behavior. In outline:
- `vfs_new` / `vfs_free` — a `Vfs` owns a mount table, nothing else.
- `backend_mem_new` / `backend_dir_new` / `backend_pack_new` /
`backend_overlay_new` — construct a backend; `vfs_mount`/`vfs_unmount`
attach or detach it at a path prefix. `backend_pack_new` mounts a pack
read-only, with no writable upper layer at all — every mutating call
against it returns `VFS_ERR_PERM`; wrap the same pack in
`backend_overlay_new` instead when writability is wanted.
- `vfs_open` / `vfs_read` / `vfs_write` / `vfs_close` — file I/O.
- `vfs_stat` / `vfs_readdir` / `vfs_mkdir` / `vfs_unlink` / `vfs_rename` —
metadata and namespace operations.
- `vfs_sync` — compacts an overlay mount into a fresh pack.
- `vfs_harden_process_with_landlock` — optional, opt-in, process-wide
Landlock confinement to the process's current `dir` mounts. Deliberately
**not** applied automatically by `vfs_mount` (Section 6.2 explains why:
Landlock restrictions are irreversible and process-wide, which would be a
surprising side effect for an embeddable library to trigger on its own).
## Concurrency
Single-writer, wait-free-reader (Section 5): readers never take a lock and
never observe a write in progress; structural changes (create/unlink/rename/
mkdir/mount/unmount) publish a new immutable snapshot via one atomic pointer
swap; ordinary content writes to an already-existing file update a per-entry
cell directly and never touch the snapshot. `mem`-backed buffer growth
never mutates a buffer address a reader might be reading (Section 5.7):
growth always allocates a new buffer and publishes it, never reallocates in
place. `tests/test_concurrency.c` exercises this under concurrent reader and
writer threads. The suite is regularly run under AddressSanitizer/
UndefinedBehaviorSanitizer, both locally and in CI (see
`.gitea/workflows/ci.yml`), and this is not aspirational — ASan caught a
real heap-use-after-free in the snapshot-reclamation logic during
development (see the `reclaim_gate` note in `src/internal.h`).
ThreadSanitizer is configured the same way but, as of this writing, has
not actually completed a run in either environment this project has been
built and tested in so far — the local development sandbox and this
project's own CI runner both block the `personality(ADDR_NO_RANDOMIZE)`
syscall TSan needs to start (see `CONTRIBUTING.md` for the confirming
tests in each case). CI's TSan step is written to not fail the build over
that specific, known-benign failure, which means a green CI run is not
evidence TSan actually executed — stated plainly here rather than left to
be assumed from CI showing green.
## Security
`dir` mounts are capability-scoped (Section 6.2): a mount holds an already-open
directory file descriptor, not a path string, and every lookup beneath it is
resolved with `openat2(RESOLVE_BENEATH | RESOLVE_NO_SYMLINKS)` on Linux 5.6+,
which atomically rejects `..` and symlink escapes in one kernel call. Where
that syscall is unavailable, containment falls back to per-component
`O_NOFOLLOW` resolution — weaker, and documented as such (Section 6.3), not
silently assumed equivalent. Pack files are treated as untrusted input unless
they came from this process's own compaction: every on-disk offset is
bounds-checked and the pack's checksum is verified before any of it is
trusted (Section 7). See `tests/test_dir.c` for a containment regression test
and `tests/test_pack_overlay.c` for a corrupted-pack rejection test. See
[`SECURITY.md`](SECURITY.md) for exactly what is and isn't claimed as a
security boundary, and how to report a vulnerability.
## Contributing
See [`CONTRIBUTING.md`](CONTRIBUTING.md). Read `concept.md` and `CLAUDE.md`
first — they are the project's actual specification and its enforced
documentation standard, respectively, and every design decision in the code
traces back to one of them. [`POSTMORTEM.md`](POSTMORTEM.md) is a detailed,
permanent record of every real bug and environment issue found during this
project's development — what happened, how it was diagnosed, the fix, and
the regression-prevention artifact for each. Check it before re-diagnosing
something that might already be answered there.
## License
MIT — see [`LICENSE`](LICENSE).