GUN-101
A simple, secure file encryption tool using AES-256-GCM and Argon2id.
What problem does this solve?
If a laptop is lost, a cloud drive is breached, or a USB stick falls into the wrong hands, the files on it are exposed. GUN-101 protects files at rest: it encrypts them so that only someone with the correct password (and, optionally, a separate keyfile) can read them, and any tampering with an encrypted file is detected and rejected before it is opened.
Overview
GUN-101 encrypts files with authenticated encryption, providing confidentiality and integrity. It supports two modes:
- Password-only: Encryption key derived from password alone
- Password + keyfile: Two-factor protection requiring both password and a separate keyfile
The design prioritizes correctness and transparency over complexity or marketing claims.
The tool uses a versioned container format (currently v2.1) to allow for future improvements while maintaining backward compatibility with v2.0 encrypted files.
Cryptographic Primitives
- Key Derivation: Argon2id (memory-hard, winner of the Password Hashing Competition 2015)
- Encryption: AES-256-GCM (authenticated encryption with associated data, NIST SP 800-38D)
- Salt: 32 bytes random per encryption
- Nonce: 12 bytes random per encryption (GCM recommended size)
- Key Length: 32 bytes (256 bits)
Security Properties
What GUN-101 does provide:
- Confidentiality: Passive attackers cannot decrypt without the password (and keyfile, if used)
- Integrity: Any tampering with the encrypted container is detected and rejected before returning plaintext
- Brute-force resistance: Argon2id maximizes the cost of guessing passwords (memory-hard, GPU-resistant)
- Two-factor protection: When a keyfile is used and stored separately, an attacker who knows the password still cannot decrypt without the physical keyfile
What GUN-101 does NOT provide:
- Protection against malware on the encryption/decryption machine
- Protection if both the encrypted file and keyfile are stolen (two-factor mode only)
- Protection against side-channel attacks, coercion, or future cryptographic breaks
- Secure deletion of plaintext or temporary files
Usage
Installation
pip install gun101
Generate a keyfile (for two-factor mode)
gun101 generate-keyfile /path/to/keyfile
This creates a 32-byte random keyfile and prints its SHA-256 fingerprint. Store the keyfile on a separate device (e.g., USB drive) and record the fingerprint.
Encrypt a file
gun101 encrypt secrets.pdf --keyfile /path/to/keyfile
Encrypts secrets.pdf to secrets.pdf.gun101. Omit --keyfile for password-only mode.
Password requirements: Must be at least 10 characters long and contain at least one uppercase letter, one lowercase letter, one digit, and one special character.
Password input: Password can be entered via interactive prompt or provided through the GUN101_PASSWORD environment variable (see Security Design for trade-offs).
Decrypt a file
gun101 decrypt secrets.pdf.gun101 --keyfile /path/to/keyfile
Decrypts to secrets.pdf (removes .gun101 extension). Omit --keyfile for password-only mode.
Password requirements: Must be at least 10 characters long and contain at least one uppercase letter, one lowercase letter, one digit, and one special character.
Password input: Password can be entered via interactive prompt or provided through the GUN101_PASSWORD environment variable (see Security Design for trade-offs).
Verify a keyfile fingerprint
gun101 keyfile-fingerprint /path/to/keyfile
Prints the SHA-256 fingerprint to confirm you have the correct keyfile.
Command Reference
The complete reference for the external interface — every command, input, output, environment variable, exit code, and the container file format — is in docs/CLI.md. A summary follows:
gun101 encrypt <file> [--keyfile <path>] [--output <path>]
Encrypts <file>. If --output not given, writes to <file>.gun101
gun101 decrypt <file> [--keyfile <path>] [--output <path>]
Decrypts <file>. If --output not given, strips .gun101 extension or appends .decrypted
gun101 generate-keyfile <path>
Generates a keyfile at <path>. Prints fingerprint after generation.
gun101 keyfile-fingerprint <path>
Prints the SHA-256 fingerprint of a keyfile.
gun101 info
Prints program and container configuration (protocol, version, Argon2 parameters, library versions).
Design Decisions
Why Argon2id?
- Resists GPU/ASIC cracking via high memory usage
- Resists side-channel attacks via data-independent memory access
- Recommended by OWASP and NIST SP 800-63B for password hashing
Password Composition Rules
GUN-101 enforces a password policy requiring at least 10 characters with uppercase, lowercase, digit, and special character. While NIST 800-63B de-emphasizes composition rules for online authentication (where rate limiting applies), GUN-101 retains them for the following reasons:
- Offline attack scenario: Encryption tools face offline brute-force attacks where rate limiting cannot be applied
- Entropy enhancement: Composition rules increase password entropy, making brute-force attacks more expensive
- User familiarity: Many users are accustomed to these rules and they provide a baseline strength guarantee
- Compatibility with Argon2id: Combined with memory-hard Argon2id, this provides strong protection against guessing attacks
Users seeking maximum security should consider using longer passphrases (14+ characters) that meet these requirements, or randomly generated passwords of sufficient length.
Why AES-256-GCM?
- Provides both confidentiality and integrity (authenticated encryption)
- Eliminates padding oracle vulnerabilities present in CBC mode
- Standardized and widely vetted
Key Concatenation
The keyfile bytes are appended to the password UTF-8 bytes before Argon2id input. This ensures the derived key depends on both factors.
Error Handling
All errors produce generic messages (e.g., "Decryption failed") to avoid leaking information about what went wrong.
Limitations
- No perfect memory wiping: Python's garbage collection prevents guaranteed key erasure from memory
- Password strength enforcement: Passwords must be at least 10 characters long and contain uppercase, lowercase, digit, and special character
- No forward secrecy: Compromised key reveals all past messages encrypted with it
- No deniability: Encrypted files are identifiable by their structure
Dependencies
- Python >= 3.10
- argon2-cffi >= 23.1.0
- cryptography >= 42.0.2
Reproducible Builds
For security-critical applications, exact dependency versions should be pinned to prevent supply chain attacks and ensure reproducible builds. A requirements.lock file is provided with exact versions and cryptographic hashes:
pip install --require-hashes -r requirements.lock
This lockfile includes:
- argon2-cffi==25.1.0
- cryptography==50.0.0
Testing
Run the test suite with:
pytest tests/ -v
Coverage of the gun101 package is measured with pytest-cov and must stay at
80% or above (see pyproject.toml); recent runs report ~88%.
Feedback and Contributing
Found a bug or have a feature request? Please open a GitHub issue — use the bug report or feature request template.
Want to contribute? Read CONTRIBUTING.md for setup instructions, coding standards, and security-sensitive contribution rules, then open a pull request.
Security vulnerabilities must not be reported as public issues. Report them privately by emailing adityaraj1234@duck.com (see Reporting a Security Vulnerability).
Reporting a Security Vulnerability
GUN-101 treats security reports with the highest priority. Do not open a public GitHub issue for a security vulnerability. Instead, email the maintainer directly at adityaraj1234@duck.com with the subject prefix [GUN101-SEC].
What we commit to:
- Acknowledgement of receipt within 48 hours
- A fix timeline within 7 days
- Coordinated public disclosure only after a patched release is available
The full process — supported versions, what is in and out of scope, how to structure a report, and how reporters are credited — is in SECURITY.md.
Project Documentation
- Architecture — high-level design of the modules and data flow
- Command-Line Reference — external interface, inputs, outputs, exit codes, formats
- Upgrading — how to upgrade and what changed between versions
- Security Design — what the tool does and does not protect against
- Threat Model — threat actors, mitigations, and scope
- Assurance Case — argument that the security requirements are met
- Security Review — documented security review of the current release
- Releasing and verifying releases — how releases are signed and verified
- Security Policy — how to report vulnerabilities
- Governance — roles, decision-making, and business continuity
- Roadmap — what the project intends to do and not do over the next year
- Contributing — how to contribute and the required standards
License
MIT License - see LICENSE file.
Warning
This software is provided as-is without warranty. Use at your own risk. The author is not liable for any data loss or security breach resulting from the use or misuse of this software.
Remember: Encryption is only as strong as your password and your ability to keep the keyfile (if used) secure. No tool can protect against a compromised endpoint or a coerced user.
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