- C 69.9%
- Shell 20.4%
- Python 5.3%
- Makefile 2.1%
- Assembly 0.9%
- Other 1.4%
| Filename | Latest commit message | Latest commit date |
|---|---|---|
The CLI paints progress as carriage-return frames ("\r path [###] 42%", no
newline until 100%). Worker.run read the child line-by-line, so it emitted
NOTHING for the whole job and the GUI looked frozen on any file bigger than one
block — reported as 'I can't compress, the app stucks'. The worker now reads
with read1() and splits on both \n and \r, parsing the percentage out of the
progress frames and driving the QProgressBar (indeterminate until the first %).
Also run the child with stdin=/dev/null (a prompt on inherited stdin would block
forever) and merge stderr into stdout so a filling second pipe can't deadlock.
|
||
| .github/workflows | ||
| completions | ||
| doc | ||
| gui | ||
| include | ||
| jasmin | ||
| packaging | ||
| sdk | ||
| src | ||
| tests | ||
| vendor | ||
| .gitignore | ||
| AUDIT.md | ||
| build.bat | ||
| CHANGELOG.md | ||
| CMakeLists.txt | ||
| DISTRIBUTION.md | ||
| INSTALL.md | ||
| install.sh | ||
| LICENSE | ||
| Makefile | ||
| README.md | ||
| SECURITY.md | ||
| THIRD-PARTY-NOTICES.md | ||
| THREAT_MODEL.md | ||
VaptVupt
Backup compression with hardware-adaptive codec selection, AES-256 authenticated encryption, post-quantum key encapsulation, and full-disk backup. Pure C11, ~13,000 lines. Builds and runs on x86_64, aarch64, armhf, ppc64le, s390x, and riscv64.
License: AGPL-3.0-or-later (dual-licensed AGPL + commercial).
Renamed from "Zupt" in v3.0.0 because of a prior INPI Brasil trademark registration on the name "Zupt" for unrelated software. The
.zuptarchive extension andZUPTheader magic bytes are unchanged — v2.x and v3.0.0 archives remain compatible. Thezuptcommand is preserved as a symlink tovaptvuptfor one major version cycle.
What's new in 5.0.0
- Genuine FIPS 203 ML-KEM-768 — validated against OpenSSL. Earlier releases
shipped round-3 CRYSTALS-Kyber under a "FIPS 203" label; it was secure but
not interoperable with a compliant ML-KEM. Three deviations (a transposed
matrix-
Âsampling convention, the round-3 KDF, and the implicit-rejection domain) are fixed, and the result is now byte-for-byte interoperable with OpenSSL 3.5's FIPS 203 ML-KEM-768 in both directions — checked on everymake check(tests/test_mlkem_fips203.sh). Hybrid--pq(ML-KEM-768 + X25519) remains the recommended flagship;--pq-onlyis pure ML-KEM-768. - ⚠ Breaking: because the KEM math changed,
--pq/--pq-onlykeys and archives from ≤ 4.2.1 no longer decrypt — regenerate keys and re-encrypt. Password mode (-p) and plain compression are unaffected; wire format is still v1.6. - CLI security fixes. A
compress -p out.zupt file1 file2data-loss bug (the archive name was eaten as the password and overwrotefile1) and acompress out.zupt dir -p pwsilent-plaintext bug are both guarded now; a heap OOB read in the AVX2 decoder on crafted archives is bounded; banners report the build's real KDF. - GUI reworked so it actually works. It used to default every encryption path to SDK modes absent from the source-only build (key generation failed out of the box). Now a build-aware Hybrid/Full-PQ selector, PQ-key auto-detect on Extract/Verify, and About/threading fixes.
- Cross-platform. A portable GUI package (Windows/macOS/Linux/BSD, needs
Python + PySide6) and a CI workflow that builds native Windows
.exe/installer and macOS.dmgon real runners.
F-16 (data loss): archives created by ≤ 3.8.0 at
-l 8/-l 9whose inputs included x86/ELF/PE executables may be undecodable by any version (write-time defect in the old in-tree BCJ encoder). Re-create such archives with 5.0.0 and verify extraction before deleting source data. Details in CHANGELOG.md.
Binaries for the CLI (5.0.0) and GUI (5.0.0) are on the release page.
Features
- Hardware-adaptive codec — auto-detects AVX2/NEON at runtime and
selects the codec: VaptVupt (LZ77 + tANS + SIMD decode) on capable
hardware, VaptVupt-LZHP on everything else. Override with
--vvor--lzhp. - Post-quantum encryption —
--pquses ML-KEM-768 + X25519 hybrid KEM (the approach used by Signal and iMessage), protecting against "harvest now, decrypt later" attacks.--pq-onlyoffers a full (pure) ML-KEM-768 mode with no classical component for "PQ-only" compliance postures. Both are in-tree and available in the default build; hybrid--pqis the recommended default. - AES-NI acceleration — AES-256-CTR via Jasmin-verified assembly with a 4-block interleaved pipeline. AVX detection validates OSXSAVE/XCR0 (no SIGILL). Falls back to C table-based AES on unsupported hardware.
- SHA-NI acceleration — HMAC-SHA256 (the Encrypt-then-MAC pass) and
PBKDF2 use the Intel SHA-NI compression path when the CPU supports it
(Intel Goldmont+/Ice Lake+, AMD Zen+), selected at runtime via CPUID.
Bit-identical output; scalar C fallback elsewhere.
vaptvupt versionprints the acceleration set for your CPU. - Incremental HMAC — the per-block MAC streams its segments through an incremental HMAC-SHA256 instead of copying each block's ciphertext into a temporary buffer, removing a per-block heap allocation and full-payload copy on encrypt and decrypt with a byte-for-byte identical MAC (RFC 2104).
- Multi-threaded — compression and decompression both parallelized.
-t 0auto-detects cores. - Full-disk backup —
vaptvupt disk backupclones disks or partitions in one command. Sparse block detection skips zero regions; all encryption modes supported; restore verifies per-block XXH64 checksums. - Per-block integrity — XXH64 checksum + HMAC-SHA256 per block. Wrong password rejected immediately.
- Self-describing KDF — password archives record their key-derivation
profile in the authenticated header, so an archive carries the parameters
needed to open it later. Unknown profiles are refused fail-closed rather
than mis-derived. Default is PBKDF2-SHA256 (600K iterations); Argon2id is
available in a
WITH_SDK=1build. - Constant-time comparisons — every security-critical comparison (HMAC
tag, archive-integrity trailer, ML-KEM-768 implicit-rejection check)
routes through a single primitive (
zupt_ct_memeq, branch-free, volatile accumulator, length-independent), checked by a dudect-style Welch t-test in CI. - Formally verified crypto — 5 Jasmin assembly functions with constant-time proofs; 19 ACSL-annotated functions for Frama-C memory safety analysis.
- Multi-architecture — builds on x86_64, aarch64, armhf, ppc64le, s390x, riscv64. Jasmin CT crypto on x86_64, C fallback everywhere else. Any archive decompresses on any architecture.
- No external dependencies (default build) — ML-KEM, X25519, Keccak,
SHA-256, AES-256, HMAC, PBKDF2 and the VaptVupt codec are all pure C11.
Builds with
gccorclalone.
Quick Start
Build & install
git clone https://git.securityops.co/cristiancmoises/vaptvupt.git && \
cd vaptvupt && \
make && \
sudo make install
The default build needs only a C compiler and make (plus libm/pthread).
make WITH_SDK=1 additionally links the separately distributed
libzuptsdk/libpqvaptvupt to enable --pq-sdk, --pq-box, and the
Argon2id KDF.
Pre-built packages
Assets are published on the
v5.0.0 release page
and verifiable against the published SHA256SUMS.txt.
Command-line tool (vaptvupt 5.0.0):
| Format | File | Distros |
|---|---|---|
| Debian/Ubuntu | vaptvupt_5.0.0_amd64.deb |
Debian 11+, Ubuntu 22.04+, Mint 21+ |
| RPM | vaptvupt-5.0.0-1.x86_64.rpm |
Fedora 38+, RHEL 9+, openSUSE, AlmaLinux, Rocky, other RPM-based distributions |
| AppDir tarball | vaptvupt-5.0.0-x86_64.AppDir.tar.gz |
Any glibc 2.28+ (extract & run, no FUSE) |
| Source tarball | vaptvupt-5.0.0.tar.gz |
Build from source on any platform |
| openSUSE OBS | vaptvupt-5.0.0-opensuse-obs.tar.gz |
Open Build Service source bundle |
Graphical front-end (vaptvupt-gui 5.0.0):
| Format | File | Distros |
|---|---|---|
| Debian/Ubuntu | vaptvupt-gui_5.0.0_all.deb |
Debian 11+, Ubuntu 22.04+, Mint 21+ |
| RPM | vaptvupt-gui-5.0.0-1.noarch.rpm |
RPM-based distributions |
| AppImage | VaptVupt-GUI-5.0.0-x86_64.AppImage |
Any glibc 2.28+ (single-file, no install) |
| AppDir tarball | VaptVupt-GUI-5.0.0-x86_64.AppDir.tar.gz |
Any glibc 2.28+ (extract & run) |
Windows / macOS / BSD:
| Platform | File | Notes |
|---|---|---|
| Windows | VaptVupt-Setup-5.0.0.exe, vaptvupt-gui-5.0.0-windows-x86_64.exe, vaptvupt-5.0.0-windows-x86_64.exe |
Native installer + standalone GUI + CLI, built on a Windows runner by CI |
| macOS | VaptVupt-5.0.0.dmg, vaptvupt-5.0.0-macos |
.dmg GUI bundle + CLI, built on a macOS runner by CI |
| Any OS (portable GUI) | vaptvupt-gui-5.0.0-portable.zip |
Python GUI + launchers for Windows/macOS/Linux/BSD; needs Python 3.8+ and PySide6 (or PyQt6), plus the vaptvupt CLI on PATH |
| BSD / others | vaptvupt-5.0.0.tar.gz |
Build the CLI from source (make); run the portable GUI |
The native Windows/macOS installers are produced by the project's CI
(.github/workflows/cross-platform.yml) on real Windows and macOS runners — see
the GitHub release. The portable GUI package runs the same GUI everywhere Python
and Qt are available.
# Verify downloads first
sha256sum -c SHA256SUMS.txt
# Debian / Ubuntu / Mint
sudo dpkg -i vaptvupt_5.0.0_amd64.deb
sudo apt-get install -f # resolve any missing deps
# Fedora / RHEL / openSUSE / AlmaLinux / Rocky and other RPM-based distros
sudo rpm -i vaptvupt-5.0.0-1.x86_64.rpm
# or
sudo dnf install ./vaptvupt-5.0.0-1.x86_64.rpm
# AppDir tarball (no install, no FUSE required)
tar xzf vaptvupt-5.0.0-x86_64.AppDir.tar.gz
./vaptvupt-5.0.0-x86_64.AppDir/AppRun --help
# GUI AppImage (single executable)
chmod +x VaptVupt-GUI-5.0.0-x86_64.AppImage
./VaptVupt-GUI-5.0.0-x86_64.AppImage
Building from SRPM (Fedora / RHEL / RPM-based distributions)
tar xzf vaptvupt-5.0.0.srpm.tar.gz
cd ~/rpmbuild # or use rpmbuild --define "_topdir $(pwd)"
rpmbuild -bb SPECS/vaptvupt.spec
sudo rpm -i RPMS/x86_64/vaptvupt-5.0.0-1.*.rpm
Basic usage
# Compress a directory (auto-selects codec for your hardware)
vaptvupt compress backup.zupt ~/Documents/
# Compress at a specific level (1=fast, 5=balanced, 9=extreme)
vaptvupt compress -l 9 backup.zupt ~/Documents/
# Force the VaptVupt codec (default on AVX2/NEON hardware)
vaptvupt compress --vv -l 5 backup.zupt ~/Documents/
# Multi-threading (-t 0 = auto-detect cores)
vaptvupt compress -t 0 -l 5 backup.zupt ~/Documents/
# Password encryption (AES-256-CTR + HMAC-SHA256, PBKDF2-SHA256 KDF)
vaptvupt compress -p "my-strong-password" backup.zupt ~/Documents/
# List archive contents
vaptvupt list backup.zupt
# Show archive metadata (no password needed)
vaptvupt info backup.zupt
# Verify archive integrity (HMAC + per-block checksums)
vaptvupt test backup.zupt
vaptvupt test -p "my-strong-password" backup.zupt
# Extract
vaptvupt extract -o ~/restored/ backup.zupt
vaptvupt extract -p "my-strong-password" -o ~/restored/ backup.zupt
# Benchmark all 9 levels on a file
vaptvupt bench big-file.tar
Post-quantum encryption
# Native --pq (ML-KEM-768 + X25519 hybrid KEM, in-tree, default build).
# Recommended for new archives.
vaptvupt keygen -o mykey.key
vaptvupt keygen --pub -o pub.key -k mykey.key
vaptvupt compress --pq pub.key backup.zupt ~/Documents/
vaptvupt extract --pq mykey.key -o ~/restored/ backup.zupt
# Native --pq-only (full/pure ML-KEM-768, no classical component).
# Use only for "PQ-only" compliance postures; --pq (hybrid) is safer.
vaptvupt keygen --pq-only -o pqkey
vaptvupt keygen --pub --pq-only -o pqkey.pub -k pqkey
vaptvupt compress --pq-only pqkey.pub backup.zupt ~/Documents/
vaptvupt extract --pq-only pqkey -o ~/restored/ backup.zupt
The SDK-backed modes below require a make WITH_SDK=1 build linked against
the separately distributed libzuptsdk/libpqvaptvupt:
# --pq-sdk (HKDF combiner + key commitment + HPKE binding + Argon2id)
vaptvupt keygen --sdk -o mykey.priv # writes mykey.priv and mykey.priv.pub
vaptvupt compress --pq-sdk mykey.priv.pub backup.zupt ~/Documents/
vaptvupt extract --pq-sdk mykey.priv -o ~/restored/ backup.zupt
# --pq-box sealed-box (ML-KEM-768 + X25519 via HKDF-SHA256 combiner)
vaptvupt keygen --box -o box.key # writes box.key + box.key.pub
vaptvupt compress --pq-box box.key.pub backup.zupt ~/Documents/
vaptvupt extract --pq-box box.key -o ~/restored/ backup.zupt
Full-disk backup
# Backup a disk or partition (sparse-detection skips zero regions)
sudo vaptvupt disk backup -l 5 disk.zupt /dev/sda
# With encryption
sudo vaptvupt disk backup -p "passphrase" -l 5 disk.zupt /dev/sda
# Restore (writes raw bytes back to a block device or file)
sudo vaptvupt disk restore disk.zupt /dev/sdb
sudo vaptvupt disk restore -p "passphrase" disk.zupt /dev/sdb
# Backup a partition image file (no root needed)
vaptvupt disk backup -l 5 part.zupt /path/to/partition.img
Auto Codec Detection
VaptVupt selects the compression codec based on your hardware (since
v2.0.0). No flags needed — vaptvupt compress picks the fastest option
available.
| Architecture | SIMD Available | Default Codec | Decode Throughput |
|---|---|---|---|
| x86_64 + AVX2 | AVX2 inline SIMD | VaptVupt | ~2–3 GB/s |
| x86_64 (no AVX2) | Scalar | VaptVupt-LZHP | ~500 MB/s |
| aarch64 + NEON | NEON SIMD | VaptVupt | ~1–2 GB/s |
| armhf, ppc64le, s390x, riscv64 | Scalar | VaptVupt-LZHP | ~300–500 MB/s |
Decompression is universal. An archive created with VaptVupt on x86_64
extracts on aarch64 (NEON or scalar decode) and vice versa. The codec ID
is stored per-block; the decoder dispatches to the right path
automatically. Override with --vv or --lzhp.
VaptVupt Codec
VaptVupt combines LZ77 dictionary matching with tANS (table-based Asymmetric Numeral Systems) entropy coding and SIMD-accelerated decompression.
This release embeds VaptVupt codec 2.60.4 (security release: fixes an OOB heap write in the AVX2 decode fast path; adds CBMC-verified BCJ filters with auto-detection). The codec API is byte-identical to the 2.48.x line; the 2.48.5 → 2.60.4 upgrades add the optimal parser (measured on our fixtures: text −1.95%, binary −1.31%, source −4.72% smaller), large-window extreme mode, faster decode (roughly on par with zstd-19, up from 1.5–2× slower), and six upstream corrupt-input decoder memory-safety fixes. See CHANGELOG.md.
Architecture
Encoder: Hash-chain LZ77 → 5-byte multiply-shift hash, rep-match (3 recent offsets),
lazy-2 parsing, AVX2 match extension (32 bytes/cycle), cost-aware lazy parser
Entropy: Canonical Huffman | tANS | 4-way interleaved ANS | order-1 context model
4-stream Huffman literal coding (lit_fmt=4) for structured data
Decoder: AVX2 inline SIMD copies, tiered by offset (32/16/8/overlap), safe-zone fast path
NEON SIMD on aarch64, scalar fallback on all architectures
Format: v1 frame (default) and v2 frame (T-tag, min_match=3) for binary data
Modes
| Mode | CLI | Chain Depth | Entropy | Use Case |
|---|---|---|---|---|
| Ultra-Fast | -l 1 to -l 2 |
4 | None | Speed priority, streaming |
| Balanced | -l 3 to -l 7 (default) |
48 | 4-way ANS | General backup data |
| Extreme | -l 8 to -l 9 |
256 | Order-1 context ANS + cost-aware lazy parser | Maximum compression |
The wrapper enables the codec's format_v2 flag (4–7% better real-binary
ratio) for Balanced and Extreme modes. Ultra-Fast stays on the v1 frame
because the format_v2 + ULTRA_FAST combination is not yet covered by the
codec's upstream test matrix.
Measured benchmark (codec 2.60.4)
Measured against gzip-9, zstd-3, zstd-19 on a 4-fixture suite (text 10 MB,
binary-struct 7.5 MB, source code 10 MB, random 5 MB). Decode timed across
3 runs, minimum reported; wall-clock including the .zupt envelope (HMAC
etc.). Host: Intel Xeon @ 2.1 GHz, single vCPU, AVX2 build. Reproduce with
vaptvupt bench <file>.
| Fixture | Tool | Ratio | Dec MB/s |
|---|---|---|---|
| text 10 MB | vv-9 | 25.6% | 278 |
| text 10 MB | gzip-9 | 22.6% | 156 |
| text 10 MB | zstd-3 | 24.2% | 556 |
| text 10 MB | zstd-19 | 17.6% | 435 |
| binary 7.5 MB | vv-9 | 46.1% | 300 |
| binary 7.5 MB | gzip-9 | 46.8% | 123 |
| binary 7.5 MB | zstd-3 | 44.8% | 577 |
| binary 7.5 MB | zstd-19 | 41.1% | 417 |
| source 10 MB | vv-9 | 4.5% | 714 |
| source 10 MB | gzip-9 | 4.0% | 238 |
| source 10 MB | zstd-3 | 5.6% | 1000 |
| source 10 MB | zstd-19 | 2.7% | 769 |
| random 5 MB | vv-9 | 100.0% | 625 |
| random 5 MB | zstd-3 | 100.0% | 681 |
Reading these numbers:
- On ratio, zstd-19 wins every fixture. VaptVupt L9 lands between zstd-3
and zstd-19 on text and binary, beats zstd-3 on source (4.5% vs 5.6%),
and loses to zstd-19 everywhere. For smallest-file only, use
xz -9orzstd -19. - Decode is competitive: 278–714 MB/s, in the same band as zstd-19 and within ~1.3× of zstd-3.
- Encode throughput is the weakness. The optimal parser and hash-chain
walk that win ratio cost encode speed; balanced mode is ~6× slower than
fast mode. For encode-latency-bound workloads use
-l 1/-l 2. - On a degenerate single-pattern input, large-window extreme (L9) can be slightly worse than L5/L7 — a tradeoff of optimizing for real long-range matches. It does not affect realistic corpora.
- On random / already-compressed data, all codecs hit the incompressibility wall.
Security regression tests
Every release re-runs the security regression matrix (make check,
≈2 minutes on x86_64 and aarch64). It covers:
- HMAC single-bit tamper detection and honest roundtrips.
- Archive-integrity trailer (header/footer tamper detection).
- Byte-level integrity sweep on a PQ archive (every byte flipped).
- KDF default (PBKDF2-SHA256) and self-describing header transparency, with back-compat and fail-closed on unknown profiles.
- Indistinguishable wrong-password vs tampered-archive error messages.
- Encrypted comment block bound to per-block AAD.
- Constant-time comparison (dudect Welch t-test on MAC tag and ML-KEM decaps) plus a source-routing guard.
- Codec exact-
content_sizedecode cases (incl. BCJ payloads) under ASan. - NIST/RFC test vectors: SHA-256, SHA-3, SHAKE-128, ML-KEM-768, AES-256-CTR (SP 800-38A), HMAC-SHA256, X25519, XXH64.
- Path-traversal refusal, block-swap detection, deduplication correctness, and CLI argument-order invariance.
make test runs the full suite including dist reproducibility and
packaging-syntax checks.
Codec notes
- tANS entropy — asymptotically optimal coding with single-instruction decode per symbol (vs Huffman's multi-step tree walk).
- 4-way interleaved ANS — decodes 4 symbols per bitstream refill cycle.
- 4-stream Huffman literal coding (
lit_fmt=4) — improves ratio on structured data. - AVX2/NEON SIMD decode — inline 32-byte copies with tiered offset handling. Scalar fallback on unsupported hardware.
- Rep-match — checks 3 recent offsets before the hash probe (O(1) vs O(chain_depth)), hitting ~30% of matches.
- Order-1 context model — captures byte-pair correlations in structured data (JSON, CSV, logs).
- Cost-aware lazy parser — puts Extreme mode ahead of zstd-3 in aggregate ratio.
- Adaptive window — trial-compresses at wlog=16 vs wlog=20, picking the larger window only if ≥3% improvement.
format_v2(T-tag, min_match=3) — 4–7% better binary ratio; transparent to v2.33.0+ decoders.- Memory hygiene — encoder working buffers scrubbed via
vv_secure_zerobeforefree(). - ~6,500 lines of pure C11.
Post-Quantum Encryption
VaptVupt has two native PQ modes, both in-tree and available in the default build.
--pq — hybrid ML-KEM-768 + X25519 (envelope 0x02, recommended):
Public key → ML-KEM-768 Encaps + X25519 ECDH → hybrid shared secret
→ SHA3-512(ss ‖ transcript) → enc_key[32] + mac_key[32]
→ AES-256-CTR + HMAC-SHA256 per block
Security model: secure if EITHER ML-KEM-768 (post-quantum) OR X25519 (classical) is secure. This is the recommended default — it stays safe even if one primitive is later broken.
--pq-only — full/pure ML-KEM-768 (envelope 0x06):
Public key → ML-KEM-768 Encaps → shared secret ss, ciphertext ct
→ archive_key = SHA3-512(ss ‖ ct ‖ "ZUPT-PQ-ONLY-v1")
→ AES-256-CTR + HMAC-SHA256 per block
Security model: secure if ML-KEM-768 is secure — there is no classical
fallback. Choose this only when a policy mandates a single NIST-standardised
PQ primitive with no classical KEM in the envelope (CNSA 2.0-style "PQ-only").
The trade-off is explicit: a future break of ML-KEM-768 alone breaks the
archive, whereas under --pq the attacker must also break X25519. When in
doubt, use --pq.
Password mode (-p) is not quantum-safe. Use --pq (or --pq-only) for
long-term protection.
The SDK-backed --pq-sdk and --pq-box modes are optional and require a
make WITH_SDK=1 build against libzuptsdk/libpqvaptvupt.
Full-Disk Backup
Clone disks, partitions, or raw images with compression and encryption in one command.
Quick start
# Clone a partition (requires read access)
sudo vaptvupt disk backup backup.zupt /dev/sda1
# Clone with post-quantum encryption
vaptvupt keygen -o mykey.key
vaptvupt keygen --pub -o pub.key -k mykey.key
sudo vaptvupt disk backup --pq pub.key backup.zupt /dev/nvme0n1p2
# Clone with password encryption
sudo vaptvupt disk backup -p backup.zupt /dev/sda1
# Maximum compression (level 9, extreme mode)
sudo vaptvupt disk backup -l 9 backup.zupt /dev/sda1
# Restore to a device or file
sudo vaptvupt disk restore backup.zupt /dev/sda1
sudo vaptvupt disk restore --pq mykey.key backup.zupt /dev/sda1
How it works
Source device → Read 4MB blocks → Sparse detection → Compress → Encrypt → Write .zupt
│ │ │
│ │ └─ AES-256-CTR + HMAC-SHA256
│ └─ VaptVupt/LZHP (auto-selected)
└─ Zero blocks stored as STORE (near-zero overhead)
VaptVupt reads the source device sequentially in 4MB chunks. Each block is
checked for all-zero content (8-byte-wide comparison). Zero blocks are
stored with codec STORE — effectively just the block header with no
payload. Non-zero blocks are compressed with the selected codec and
optionally encrypted. Per-block XXH64 checksums ensure byte-for-byte
integrity on restore.
Best practices
Encryption modes:
| Mode | Command | Security Level | Speed Impact |
|---|---|---|---|
| PQ Hybrid | --pq pub.key |
Quantum-resistant + classical | ~5% overhead |
| Password | -p |
AES-256, PBKDF2-SHA256 600K iter | ~3% overhead |
| None | (default) | Integrity only (XXH64) | Fastest |
Compression levels for disks:
| Level | Mode | Best for | Typical ratio |
|---|---|---|---|
-l 1 to -l 3 |
Ultra-Fast | Live systems, NVMe (speed priority) | 1.5–2.5:1 |
-l 4 to -l 7 |
Balanced (default) | General partitions, ext4/NTFS | 2–5:1 |
-l 8 to -l 9 |
Extreme | Cold storage, archival backups | 3–10:1 |
Operational guidance:
- Unmount before backup for filesystem consistency. For live systems use
LVM snapshots or filesystem freeze:
fsfreeze -f /mnt/data && vaptvupt disk backup ... && fsfreeze -u /mnt/data. - Block devices require root on Linux. Regular files (disk images,
.img,.raw) do not. - Sparse-heavy disks compress well — the sparse detector skips zero blocks at memory-copy speed with no compression overhead.
- Verify after backup with
vaptvupt test archive.zupt— checks every block's XXH64 checksum without extracting. - For long-term disk backups use
--pq. Generate one keypair, store the private key offline, distribute the public key. - Restore is non-destructive on files (creates/overwrites the file); writing to a block device overwrites the raw device. Double-check the target path before restoring to a device.
Multi-Architecture Support
The Makefile auto-detects the platform and enables the best available features.
| Feature | x86_64 | aarch64 | armhf | ppc64le | s390x | riscv64 |
|---|---|---|---|---|---|---|
| Jasmin CT crypto | yes | C fallback | C fallback | C fallback | C fallback | C fallback |
| AES-NI hardware | yes (with AVX) | — | — | — | — | — |
| AVX2 SIMD decode | yes | — | — | — | — | — |
| NEON SIMD decode | — | yes | — | — | — | — |
| Default codec | VaptVupt | VaptVupt | LZHP | LZHP | LZHP | LZHP |
| All codecs decode | yes | yes | yes | yes | yes | yes |
Build for packaging (PIE, hardening flags):
make CFLAGS="-Wall -Wextra -O2 -std=c11 -fPIE -Iinclude -Isrc" LDFLAGS="-pie -Wl,-z,relro,-z,now"
make install DESTDIR=/buildroot
Security
Password mode: Password → PBKDF2-SHA256 (600K iter) → enc_key + mac_key
PQ hybrid mode: Public key → ML-KEM-768 Encaps + X25519 ECDH → enc_key + mac_key
Per-block: AES-256-CTR(enc_key, nonce ⊕ seq) + HMAC-SHA256(mac_key)
Key protection: mlock() prevents swap, buffer canaries detect overflow
Timing: Always-decrypt mitigation (no timing oracle on MAC failure)
AES dispatch: AVX+AES-NI check with OSXSAVE/XCR0 (no SIGILL on any CPU)
Path safety: Zip Slip / symlink defenses (zupt_path_is_safe + O_NOFOLLOW)
Verification: 5 Jasmin CT proofs, 19 ACSL contracts, 16 NIST/RFC test vectors
The WITH_SDK=1 build adds an HKDF-SHA3 combiner with domain separation,
key commitment, and HPKE binding for the --pq-sdk/--pq-box modes, plus
the Argon2id KDF.
Internal audit passes on the 2.2.x line fixed 14 bugs, including a HIGH-severity Zip Slip path traversal. There has been no external audit. See SECURITY.md for the threat model and honest scope, and FORMAL_AUDIT_PROMPT.md for the audit methodology.
Report security vulnerabilities per SECURITY.md.
Usage
vaptvupt compress [OPTIONS] <output.zupt> <files/dirs...>
vaptvupt extract [OPTIONS] <archive.zupt>
vaptvupt list [OPTIONS] <archive.zupt>
vaptvupt test [OPTIONS] <archive.zupt>
vaptvupt disk backup [OPTIONS] <output.zupt> <device_or_file>
vaptvupt disk restore [OPTIONS] <archive.zupt> <target>
vaptvupt bench [--compare] <files/dirs...>
vaptvupt keygen [-o file] [--pub] [-k privkey]
vaptvupt version
vaptvupt help
| Option | Description |
|---|---|
-l <1-9> |
Compression level (default: 7) |
-t <N> |
Thread count (0=auto, 1=single, 2–64) |
-p [PW] |
Password encryption (PBKDF2-SHA256 → AES-256) |
--pq <keyfile> |
Post-quantum hybrid encryption |
-o <DIR> |
Output directory (extract) |
-s |
Store without compression |
-f |
Fast LZ codec (VaptVupt-LZ) |
--vv |
Force VaptVupt codec |
--lzhp |
Force VaptVupt-LZHP codec |
-v |
Verbose |
--solid |
Solid mode (cross-file LZ context) |
--compare |
Codec comparison benchmark |
Building
make # Default build: C compiler + make only
make WITH_SDK=1 # Link libzuptsdk/libpqvaptvupt: --pq-sdk, --pq-box, Argon2id
make V=1 # Verbose build output
make test-all # Regression + NIST + VV + MT + PQ + disk
make test-vv # VaptVupt codec unit tests only
make test-asan # AddressSanitizer + UBSan build
make fuzz-build # AFL++ fuzzing harnesses
make install # Install binary + man page
make help # Show all targets + detected capabilities
build.bat # Windows (MSVC)
Benchmark
vaptvupt bench ~/Documents/ # Per-level benchmark (levels 1-9)
vaptvupt bench --compare # Cross-codec comparison (auto-generates corpus)
vaptvupt bench --compare ~/Documents/ # Compare codecs on your own data
Codec Reference
| ID | Name | Algorithm | Default on | Override |
|---|---|---|---|---|
0x0010 |
VaptVupt | LZ77 + tANS + AVX2/NEON SIMD | x86_64 (AVX2), aarch64 (NEON) | --vv |
0x000A |
VaptVupt-LZHP | LZ77 + Huffman + byte prediction | armhf, ppc64le, s390x, riscv64 | --lzhp |
0x0009 |
VaptVupt-LZH | LZ77 + Huffman | — | — |
0x0008 |
VaptVupt-LZ | Fast LZ77, 64KB window | — | -f |
0x0000 |
Store | No compression | — | -s |
All codecs are forward-compatible: archives created with any codec can be read by any VaptVupt version that includes that codec, on any architecture. VaptVupt archives require VaptVupt v2.0+.
Release History
| Version | Description |
|---|---|
| v0.1–v0.6 | LZ77 compression, AES-256 encryption, multi-threading |
| v0.7 | Post-quantum hybrid encryption (ML-KEM-768 + X25519) |
| v1.0 | Stable release — format frozen v1.4, security audit |
| v1.1–v1.5.5 | X25519 fix, NIST vectors, CPUID detection, Jasmin CT assembly linked, build-system improvements |
| v2.0 | VaptVupt codec, auto hardware detection, all 5 Jasmin wired, AVX SIGILL fix, ACSL, mlock, fuzzing, canaries, AES-NI pipeline, MT decompress, multi-arch (6 arches), --lzhp |
| v2.1.x | Cross-block dictionary carry, Termux/Android build fix, full-disk backup/restore, LZHP fix, CodeQL fixes, block-level deduplication |
| v2.2.x | libzuptsdk integration (--pq-sdk), VaptVupt 2.48.2 codec (cost-aware lazy parser, 4-stream Huffman, format_v2), audit findings F-01..F-07 closed (incl. F-06 high) |
| v2.3.x | F-08/F-09 closed: archive-integrity trailer + preface-AAD MAC (format v1.5 → v1.6) |
| v2.4.x | PBKDF2/Argon2id KDF work (F-10), error-message hygiene (F-11), encrypted comments (F-12), packaging arc (deb/RPM/AUR/Nix/Homebrew/OBS), THREAT_MODEL.md, manpage + completions, distro-safe make check |
| v3.0.x | Renamed Zupt → VaptVupt (INPI Brasil trademark), VV codec 2.48.5, GUI fixes, F-13 fix. Wire format unchanged; zupt kept as compat symlink |
| v3.1.0–v3.3.0 | Codec 2.48.5 → 2.53.3, decode over-copy fix, SHA-256 hardware acceleration (Intel SHA-NI), incremental per-block HMAC |
| v3.4.0–v3.8.0 | F-15 KDF parameter transparency, measured constant-time MAC comparison (dudect), NIST SP 800-38A AES-CTR vectors, ML-KEM decaps through the CT primitive, consolidated benchmarks |
| v4.0.0 | Codec 2.60.4 security release (OOB heap write fixed in AVX2 decode fast path), --pq-box sealed-box mode, F-16 data-loss disclosure + fix (old in-tree BCJ encoder), CBMC-verified BCJ filters with auto ELF/PE/Mach-O detection, SHA-NI acceleration. Wire format v1.6 |
| v4.1.0 | Source-only tree (prebuilt libzuptsdk/libpqvaptvupt removed); default build needs only a C compiler + make; native --pq is the default PQ mode; --pq-sdk/--pq-box/Argon2id gated behind make WITH_SDK=1. Wire format stays v1.6 |
| v4.2.0 | Full (pure) post-quantum mode --pq-only (ML-KEM-768 only, envelope 0x06); critical fix for AES-CTR keystream reuse under --dedup (fresh random per-block nonce); clearer SDK keygen guidance. Wire format stays v1.6 |
| v4.2.1 | vaptvupt info now reports the real post-quantum mode (--pq-only no longer mislabelled as hybrid); reader-side only, no wire-format change |
| v5.0.0 | Genuine FIPS 203 ML-KEM-768 (validated vs OpenSSL); CLI data-loss/plaintext guards; AVX2 decoder OOB-read fix; GUI reworked for native PQ modes; cross-platform packaging. Breaking: --pq/--pq-only keys+archives from ≤4.2.1 do not decrypt |
See CHANGELOG.md for detailed per-version changes.
License
VaptVupt is dual-licensed:
- AGPL-3.0-or-later — most of the codebase (CLI, GUI, Jasmin source).
See
LICENSE. - GPL-3.0-or-later — the VaptVupt LZ codec only (
src/vv_*.c,src/vaptvupt_api.cand headers), so it can be considered for upstreaming into the Linux/BSD kernels. - Commercial license available for relief from AGPL/GPL terms. Contact
sac@securityops.co.
Every source file carries an explicit SPDX header. See THIRD-PARTY-NOTICES.md for full attribution. VaptVupt contains no third-party source code.
Acknowledgements
- openSUSE packaging — Alessandro de Oliveira Faria (CABELO)
<cabelo@opensuse.org>, openSUSE maintainer, packaged VaptVupt for the openSUSE
Build Service (the recipe under
packaging/opensuse/).
All compression and cryptography code is by Cristian Cezar Moisés.
Related projects
All by Cristian Cezar Moisés, hosted on git.securityops.co:
- vaptvupt — this repo (CLI + GUI)
- zupt-android — Android port
- zupt-web — Web frontend
- libvuptsdk — Standalone C SDK
- vaptvupt-codec — Standalone LZ + tANS codec
© 2026 Cristian Cezar Moisés — git.securityops.co/cristiancmoises