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BEE

BEE

Binary, Evidence & Evaluation.

BEE is a CLI for vetting AI/ML model artifacts before they enter your environment: it examines the binary artifact itself, gathers evidence about what it actually is, and produces an evaluation — a concrete, explained finding rather than a bare pass/fail label. Today that means establishing an artifact's identity, detecting its real structural format (never trusting the file extension), and flagging mismatches between the two.

This is early. Static security analysis beyond format-mismatch detection (pickle call-graph analysis, SafeTensors bounds checks, GGUF metadata inspection, and more), provenance, supply-chain checks, licensing, and policy enforcement are planned in later releases.

Install

pip install bee-guard

or, for local development:

git clone https://github.com/Aj7Ay/BEE.git
cd BEE
uv sync

Usage

# Initialize a workspace in the current directory
bee init

# Scan a file or directory
bee scan ./models

# Inspect a single artifact in detail
bee inspect ./models/model.safetensors

# JSON output, for scripting or CI
# --format is a root option, so it comes before the subcommand
bee --format json scan ./models

# Fail the build if anything at or above a severity is found
bee scan ./models --fail-on high

# Reproducible output: identical input -> byte-identical JSON
bee --format json scan ./models --deterministic

# Past runs, and re-displaying one by id
bee history
bee show <run-id>

Example

$ bee scan ./models
BEE SCAN
Target: models
Artifacts scanned: 2
┏━━━━━━━━━━━━━━━━━━━┳━━━━━━━━┳━━━━━━┳━━━━━━━━━━┓
┃ PATH              ┃ FORMAT ┃ SIZE ┃ FINDINGS ┃
┡━━━━━━━━━━━━━━━━━━━╇━━━━━━━━╇━━━━━━╇━━━━━━━━━━┩
│ models/model.gguf │ gguf   │ 16   │ -        │
│ models/weights.pt │ numpy  │ 24   │ 1        │
└───────────────────┴────────┴──────┴──────────┘
Findings: 0 critical, 0 high, 0 medium, 1 low, 0 info

weights.pt is flagged (BEE-FMT-001) because its extension claims PyTorch but the file is structurally a NumPy array — exactly the kind of mismatch a renamed or mislabeled artifact would produce.

What BEE detects today

Structural signatures for: SafeTensors, GGUF, NumPy, HDF5/Keras, Pickle (all protocols, resistant to trailing-byte padding), PyTorch (zip-based), ONNX (structural heuristic), and generic zip/tar/gzip archives. Anything else is reported as unknown rather than guessed.

bee scan and bee inspect both flag:

  • symlinks whose target resolves outside the scanned/inspected directory (BEE-SYM-001) — the target is never opened (so never hashed) unless you pass --follow-symlinks; the same rule applies whether you point inspect at the symlink directly or scan finds it while walking a directory
  • files it couldn't read, without aborting the rest of the scan (BEE-IO-001)

Development

uv sync
uv run pytest -v

License

Apache License 2.0 — see LICENSE.

Release files for bee-guard 0.2.2

For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.

Source distribution (sdist)

Source distribution for bee-guard 0.2.2
File Size Uploaded
bee_guard-0.2.2.tar.gz 2.2 MB Details

Built distribution (wheel)

Table of built distributions (wheels) for bee-guard 0.2.2
File Interpreter ABI Platform
bee_guard-0.2.2-py3-none-any.whl Python 3 none any Details

Total release size: 2.2 MB

Release files / bee_guard-0.2.2.tar.gz

Download URL bee_guard-0.2.2.tar.gz
Size 2.2 MB
Tags Source
SHA-256 checksum
How to use checksums
b95bf382939fccf5f42370a56d064b12a9456b7504673bf08d60728ec3f41b08
BLAKE2b-256 checksum
How to use checksums
5bf524344eda1d0b860495af7f855c8cff498d58d2f3586de49c2442fce9ceb1
Upload date
Uploaded using Trusted Publishing?
What is trusted publishing?
Yes
Uploaded via twine/7.0.0 CPython/3.13.14

Provenance

Provenance describes where a file came from. On PyPI, provenance is shared via attestations, which provide a verifiable record of the build or publishing details. View details, limitations and caveats.

PyPI Publish Attestation

PyPI verified that this artifact, at this checksum, originated from the publisher listed below.

Signed by GitHub Actions, verified by PyPI on Sep 16, 2026.

Transparency log

Release files / bee_guard-0.2.2-py3-none-any.whl

Download URL bee_guard-0.2.2-py3-none-any.whl
Size 24.7 kB
Tags Python 3
SHA-256 checksum
How to use checksums
3685760c868b15e33b1654663a99a63afa62b8171c7b8579607edcbfb17f1cd6
BLAKE2b-256 checksum
How to use checksums
fb85e9cf1a994ac51191cab181b32e33d405f5059dc633d55d1fdffe6be101f9
Upload date
Uploaded using Trusted Publishing?
What is trusted publishing?
Yes
Uploaded via twine/7.0.0 CPython/3.13.14

Provenance

Provenance describes where a file came from. On PyPI, provenance is shared via attestations, which provide a verifiable record of the build or publishing details. View details, limitations and caveats.

PyPI Publish Attestation

PyPI verified that this artifact, at this checksum, originated from the publisher listed below.

Signed by GitHub Actions, verified by PyPI on Sep 16, 2026.

Transparency log

Release history Release notifications | RSS feed

1.5.0

2 release files

1.4.0

2 release files

1.3.1

2 release files

1.3.0

2 release files

1.2.0

2 release files

1.1.0

2 release files

1.0.0

2 release files

0.17.0

2 release files

0.16.0

2 release files

0.15.1

2 release files

0.15.0

2 release files

0.14.1

2 release files

0.14.0

2 release files

0.13.0

2 release files

0.12.0

2 release files

0.11.0

2 release files

0.10.0

2 release files

0.9.2

2 release files

0.9.1

2 release files

0.9.0

2 release files

0.8.0

2 release files

0.7.0

2 release files

0.6.2

2 release files

0.6.1

2 release files

0.6.0

2 release files

0.5.1

2 release files

0.5.0

2 release files

0.4.1

2 release files

0.4.0

2 release files

0.3.1

2 release files

0.3.0

2 release files

0.2.4

2 release files

0.2.3

2 release files

This release

0.2.2 This release

2 release files

0.2.1

2 release files

0.2.0

2 release files

0.1.1

2 release files

0.1.0

2 release files

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