zupt/SECURITY.md
Cristian Cezar Moisés 4874010d0e v4.1.0: source-only build, multithreaded-encryption fix, security hardening
Build from source with no vendored binaries:
- Remove prebuilt libzuptsdk.so / libpqvaptvupt.so (and a stray .pyc). The
  default build needs only a C compiler + make; it links no external library
  and installs no .so. The libzuptsdk-backed modes (Argon2id KDF, --pq-sdk,
  --pq-box) are gated behind an opt-in `make WITH_SDK=1`. The default password
  KDF is PBKDF2-SHA256 and --pq (native ML-KEM-768 + X25519) is the built-in PQ
  mode. openSUSE/RPM/deb/AUR/Homebrew/Nix recipes bumped to 4.1.0; the openSUSE
  spec now builds source-only (%files ships no .so, %build/%install WITH_SDK=0).

Fix: multithreaded encrypted archives were unextractable on the native AEAD
path. The parallel compress/decompress workers skipped the F-09 frame-preface
AAD that the serial path and the archive's AAD_PREFACE flag bind into every
block MAC, so each multithreaded block failed authentication. The workers now
bind the preface via a shared serializer; output is byte-identical across
thread counts and interoperates with single-threaded archives (also fixes
`--kdf pbkdf2 -t N` in any build).

Security hardening (crafted-archive memory safety + crypto):
- LZH raw code-length stack overflow + huff_lut OOB write
- overflow-safe bounds in parse_index and solid-mode extract (heap OOB read)
- SEQ decoder safe-zone heap overflow (litlen+matchlen reserve)
- require the per-block ENCRYPTED flag on encrypted archives (plaintext forgery)
- cap archive-supplied PBKDF2 iteration count (KDF-amplification DoS)
- non-elidable secret wipe in the SDK path; restored disk images created 0600

Docs: remove AUDIT.md / BENCHMARKS.md / ROADMAP.md; trim marketing/AI-styled
text and correct KDF/PQ facts across README, SECURITY, INSTALL, DISTRIBUTION,
THREAT_MODEL, THIRD-PARTY-NOTICES, the man page, and packaging READMEs. Wire
format v1.6 unchanged.
2026-07-07 19:45:37 -03:00

271 lines
12 KiB
Markdown

# Security Policy — VaptVupt 4.1.0
## Reporting Vulnerabilities
Report privately by email to **zupt@riseup.net** with `[security]` in the
subject. Do not open a public issue on the project's git server.
Include:
- Version (`vaptvupt --version`) and platform.
- Description, impact assessment, and a reproduction (a minimal archive or
a code snippet).
Disclosure SLA: acknowledgement within 5 business days; target fix within
30 days for high-severity issues. Coordinated disclosure preferred; the
timeline is discussed case by case. A PGP key is on the project's
keyserver entry.
The project has not had an external independent audit. For high-stakes
deployments, treat it as "reviewed but unaudited" and do your own review.
---
## Encryption Modes
| Mode | CLI Flag | Algorithm | PQ-Safe? | Use Case |
|------|----------|-----------|----------|----------|
| Password | `-p` | PBKDF2-SHA256 → AES-256-CTR + HMAC-SHA256 | No | Short-term backups, personal use |
| PQ Hybrid | `--pq` | ML-KEM-768 + X25519 → AES-256-CTR + HMAC-SHA256 | Yes | Long-term archives, high-value data |
| None | (default) | No encryption (compression only) | N/A | Non-sensitive data |
Password mode (`-p`) is not quantum-safe. For protection against "harvest
now, decrypt later" quantum attacks, use `--pq` — the recommended
post-quantum mode. `--pq` is native and in-tree; it needs no external
library.
Optional SDK modes (`--pq-sdk`, `--pq-box`) are available only in an
upstream `make WITH_SDK=1` build linked against the separately distributed
libzuptsdk / libpqvaptvupt libraries. They are not part of the default
build and are not defaults.
---
## Cryptographic Algorithms
| Component | Algorithm | Standard | Key Size | Security Level |
|-----------|-----------|----------|----------|---------------|
| Symmetric encryption | AES-256-CTR | FIPS 197 | 256-bit | 128-bit post-quantum (Grover) |
| Authentication | HMAC-SHA256 | RFC 2104 | 256-bit | 128-bit post-quantum (Grover) |
| Password KDF (default) | PBKDF2-SHA256 | RFC 8018 | 600K iterations | Password-dependent |
| Password KDF (WITH_SDK=1 option) | Argon2id | RFC 9106 | OWASP minimums | Password-dependent, memory-hard |
| Post-quantum KEM | ML-KEM-768 | FIPS 203 | 1184B pk / 2400B sk | NIST Level 3 |
| Classical KEM | X25519 | RFC 7748 | 32B scalar | ~128-bit classical |
| Hybrid KDF | SHA3-512 | FIPS 202 | 512-bit output | Secure if either KEM holds |
| Integrity | XXH64 | xxHash spec | 64-bit checksum | Non-cryptographic |
| Hashing | SHA3-256, SHA3-512 | FIPS 202 | 256/512-bit | Standard |
| Random | OS CSPRNG | getrandom(2) / RtlGenRandom | N/A | Hard fail if unavailable |
The default build uses PBKDF2-SHA256 (600k iterations) for password mode.
Argon2id is available only in a `make WITH_SDK=1` build.
---
## Security Architecture
### Per-Block Authenticated Encryption
```
For each data block (sequence 0, 1, 2, ...):
nonce = base_nonce XOR pad_le(block_seq, 8) [16 bytes]
ciphertext = AES-256-CTR(enc_key, nonce, plaintext)
mac = HMAC-SHA256(mac_key, nonce ‖ ciphertext) [32 bytes]
stored = nonce ‖ ciphertext ‖ mac
```
### Encrypt-then-MAC
HMAC is computed over `nonce ‖ ciphertext` and verified **before** any
decryption. This prevents:
- Chosen-ciphertext attacks
- Padding oracle attacks
- Processing of tampered data
### Hybrid Post-Quantum KEM (`--pq`)
```
Encapsulation:
ML-KEM-768.Encaps(pk) → ml_ct[1088], ml_ss[32]
eph_sk ← CSPRNG(32)
eph_pk = X25519(eph_sk, basepoint)
x25519_ss = X25519(eph_sk, recipient_pk)
hybrid_ikm = ml_ss XOR x25519_ss
archive_key = SHA3-512(hybrid_ikm ‖ ml_ct ‖ eph_pk ‖ "ZUPT-HYBRID-v1")
enc_key = archive_key[0:32]
mac_key = archive_key[32:64]
```
Security model: secure if EITHER ML-KEM-768 (post-quantum, NIST Level 3)
OR X25519 (classical, ~128-bit) remains unbroken. Both must be compromised
simultaneously to recover the archive key. Same approach as Signal
(PQXDH), Apple iMessage (PQ3), and OpenSSH 9.0+.
The `--pq-sdk` mode (WITH_SDK=1 only) uses an HKDF-SHA3-256 combiner, a
32-byte key commitment tag, HPKE-style context binding (RFC 9180 §5),
anti-fault double decapsulation, and XChaCha20-Poly1305 AEAD.
---
## Constant-Time Guarantees
### Jasmin-Verified (assembly linked into binary)
| Function | Purpose | Proof |
|----------|---------|-------|
| `zupt_mac_verify_ct` | HMAC comparison (32 bytes) | Jasmin type system: no branch on diff value |
| `zupt_ct_select_32` | ML-KEM FO implicit rejection | Jasmin type system: no branch on cond value |
These functions are compiled from Jasmin source to x86-64 assembly. The
Jasmin compiler enforces that no secret-typed variable flows into branch
conditions or memory addresses. This guarantee holds at the machine code
level — no C compiler optimization can introduce timing leaks.
### C Constant-Time (branchless, compiler-dependent)
| Function | Method | Risk |
|----------|--------|------|
| X25519 `fe_cswap` | Masked XOR (`mask & (a ^ b)`) | Low — branchless but compiler may optimize |
| ML-KEM NTT/basemul | Montgomery reduction (no branches) | Low |
| ML-KEM CBD sampling | Bitwise operations only | Low |
| Key wipe (`zupt_secure_wipe`) | `explicit_bzero` / volatile | Low |
### NOT Constant-Time (documented risks)
| Function | Risk | Mitigation |
|----------|------|------------|
| AES-256 block encrypt | HIGH on shared hardware — S-box table lookups leak via cache timing | Jasmin AES-NI path planned; do not use on multi-tenant VMs |
| SHA-256 | Low — table constants are public, not indexed by secret data | Accepted |
---
## Threat Model
### What VaptVupt Protects
| Asset | Protection |
|-------|-----------|
| File contents | AES-256-CTR encryption |
| File names, sizes, structure | Encrypted in central index block, HMAC-protected |
| Archive integrity (payloads + index) | Per-block HMAC-SHA256 |
| Archive integrity (header + footer metadata) | v1.5+ archives: 32-byte archive-integrity-trailer HMAC-SHA256 over `hdr ‖ ft[0..23]`. v1.4 archives: not covered, downgrade warning on extract. |
| Against stolen backups | AES-256 requires key/password to read |
| Against tampering of file contents, names, sizes, offsets | HMAC detects any modification |
| Against tampering of per-block frame preface bytes (codec_id, block_flags, varints, plaintext-XXH64) | v1.6: per-block MAC binds the canonical preface AAD; encryption-header block validated structurally |
| Against tampering of archive comment (when present) | Comment block goes through the same per-block AEAD pipeline as data (AES-256-CTR + HMAC-SHA256 + preface AAD); `hdr.comment_offset` pointer is in the AIT-signed region |
| Against block-swap (reorder) attacks | MAC binds an 8-byte position AAD; a block moved to another position fails verification and its partial output is unlinked. Dedup refs use sentinel seq=0 and rely on plaintext XXH64 for per-block integrity. |
| Against malicious archive entries (Zip Slip / path traversal) | `zupt_path_is_safe()` rejects `..`, absolute paths, Windows drive/UNC paths, embedded NULs |
| Against symlink at extract target (TOCTOU) | `zupt_safe_fopen_output()` uses `O_NOFOLLOW` on POSIX. Windows relies on directory ACLs (documented limitation). |
| Against quantum adversary | `--pq` mode: ML-KEM-768 (NIST Level 3) hybridized with X25519 |
The wire/on-disk format is v1.6. See CHANGELOG.md for the per-release
finding history behind these protections.
### What VaptVupt Does NOT Protect Against
| Threat | Reason | Mitigation Path |
|--------|--------|----------------|
| Attacker who knows the password or has the private key | Fundamental to encryption | Use strong passwords (12+ chars); protect key files |
| Endpoint compromise (keylogger, malware on the host) | Outside the archive's trust boundary | Secure the machine where you type the password or hold the key |
| Cache-timing side channels (C AES) | Table-based S-box lookups | Build with Jasmin AES-NI when available; avoid multi-tenant VMs |
| Memory forensics during operation | Keys on stack during compress/extract | `zupt_secure_wipe()` on completion; `mlock()` planned |
| Deniability | Archive header identifies format | `.zupt` magic bytes visible; ENCRYPTED flag in header |
| Weak passwords | PBKDF2-SHA256 (600k) is the default KDF; Argon2id (memory-hard) is available in a WITH_SDK=1 build | Use `--pq` mode for critical data — keys are random, not derived from a password |
| Traffic analysis / metadata | Archive size reveals data volume; file list, sizes, mtimes not padded | Outside VaptVupt's scope |
| File permission/ownership | Not stored in archive | Documented in README.md |
| Spectre-class side channels in callers | Below the constant-time primitive layer | Host OS / compiler mitigations |
### Quantum Threat Analysis
Scenario: adversary captures an encrypted archive today, stores it, and
attempts decryption when a cryptographically-relevant quantum computer is
available.
| Mode | Classical Security | Quantum Security | Verdict |
|------|-------------------|-----------------|---------|
| Password (`-p`) | Password-dependent + 256-bit AES | ~128-bit (Grover on AES), PBKDF2 accelerated | Vulnerable — use `--pq` |
| PQ Hybrid (`--pq`) | ~128-bit (X25519) | NIST Level 3 (ML-KEM-768) | Protected |
In `--pq` mode: even if Shor's algorithm breaks X25519, ML-KEM-768
protects the archive; even if a novel classical attack breaks ML-KEM,
X25519 still provides ~128-bit security. The hybrid design is secure if
either component holds.
### Extracting untrusted archives — operational guidance
The in-binary defenses are the primary control; the following are defense
in depth:
1. Extract into a dedicated empty directory (not `~/Downloads` or `/tmp`).
2. Audit symlinks in the target directory before extraction.
3. Run extraction as a low-privilege user, never root.
4. On Windows, pre-create the target directory with restrictive ACLs
(the `O_NOFOLLOW` defense is POSIX-only).
### Out of scope
- External independent audit.
- Side-channel testing on production hardware (timing leaks).
- Formal verification beyond the Jasmin constant-time primitives.
---
## CSPRNG Policy
| Platform | Primary Source | Fallback | Failure Mode |
|----------|---------------|----------|--------------|
| Linux | `getrandom(2)` | `/dev/urandom` | Hard exit — no encryption without CSPRNG |
| macOS | `/dev/urandom` | None | Hard exit |
| Windows | `RtlGenRandom` | None | Hard exit |
There is no `rand()`, `srand()`, or any weak PRNG fallback anywhere in the
codebase. If the OS CSPRNG is unavailable, VaptVupt exits with an error.
This is a deliberate design choice — weak random keys are worse than no
encryption.
---
## Supported Platforms
| Platform | Compiler | Threading | CSPRNG | Status |
|----------|----------|-----------|--------|--------|
| Linux x86-64 | GCC 5+ / Clang 3.5+ | pthreads | `getrandom(2)` | Primary |
| Linux ARM64 | GCC 5+ | pthreads | `getrandom(2)` | Tested |
| macOS x86-64/ARM64 | Apple Clang | pthreads | `/dev/urandom` | Tested |
| Windows x86-64 | MinGW / MSVC 2015+ | Win32 threads | `RtlGenRandom` | Tested |
| FreeBSD | GCC / Clang | pthreads | `/dev/urandom` | Untested (expected to work) |
---
## Verification Commands
Anyone can verify the security claims. The default build needs only a C
compiler + make (plus libm/pthread); no external crypto library.
```bash
# Build
make
# Functional tests
make test-all
# Memory safety
make test-asan
# NIST/RFC test vectors
make test-vectors && ./test_vectors
# Verify Jasmin symbols are active
nm vaptvupt | grep "zupt_mac_verify_ct\|zupt_ct_select_32"
# Expected: T zupt_mac_verify_ct
# T zupt_ct_select_32
# Verify Jasmin compilation (requires jasminc)
jasminc -arch x86-64 -o /dev/null jasmin/zupt_mac_verify.jazz
jasminc -arch x86-64 -o /dev/null jasmin/zupt_mlkem_select.jazz
```
---
© 2026 Cristian Cezar Moisés — AGPL-3.0-or-later (dual-licensed AGPL + commercial)