jacobian

by morlutoVerified

A universal, atomic library of mathematics and tools for agents to compose them.

55
Stars
9
Forks
Python
Language
8/24/2026
Added
View on GitHubDownload ZIP

⚠️ Third-Party Software Notice

This skill is third-party open-source software developed and hosted independently on GitHub. SkillTip is an informational directory and does not control or maintain the underlying repository. Any security checks displayed are automated and limited in scope. Review the source code before installing.

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Installation

Add to your Claude Code skills directory:

# Add to your Claude Code skills
git clone https://github.com/morluto/jacobian

Getting Started

Guides for using skills like jacobian.

Security Report

Verified

Last scanned: —

{
  "status": "PASSED",
  "issues": []
}

README.md

English · 简体中文

An archival-style black-and-white photograph of a mathematician working at a chalkboard, with a constant Jacobian determinant and three distinct inputs mapping to one output.

Jacobian

An executable mathematical vocabulary for agents: discover one typed operation, run it, and compose its result.

CI PyPI npm Supported Python versions MIT license

Jacobian is an MCP server that gives AI agents a searchable vocabulary of typed mathematical operations. math.find discovers an operation, and math.run executes exactly one bounded mathematical contract and returns its typed result. The same mathematical library is also available through a CLI and native Python API.

Each operation establishes one stable, reusable mathematical postcondition rather than prescribing a workflow or proof strategy. Results are exact where claimed and make approximation, incompleteness, or uncertainty explicit.

Jacobian's hypothesis is that mathematical reasoning benefits from an executable vocabulary of semantically scoped, bounded operations. Rather than exposing large domain solvers or precomposed workflows, Jacobian exposes mathematical primitives that agents can search for and compose into solutions beyond what any individual operation was designed to solve. The library supplies trustworthy mathematical moves; the reasoning model decides which moves to make, how to combine their results, and when to stop. Keeping the operations semantically narrow and domain-owned preserves that search space instead of baking one proof strategy or workflow into the tools themselves.

See Executable mathematical vocabulary for what semantic atomicity means and how the operation vocabulary grows.

Quickstart

Set up Jacobian for your agents with a single command. The setup command requires Node.js 18 or newer and uvx on your PATH.

npx jacobian@latest setup

Choose detected agents and review the changes before they are written. Setup does not install Node.js, Python, uv, or an agent. For automation, preview an explicit plan with npx jacobian@latest setup --codex --dry-run; use --yes only with explicit agent flags or --all.

Run the canonical Python MCP command without installing Jacobian globally:

uvx --from jacobian jacobian-mcp

Where an MCP host requires an npm command, the npm package is a deterministic carrier for that same command:

npx jacobian mcp

For a persistent installation:

python -m pip install jacobian
jacobian-mcp

That package includes Jacobian's exact maintained Python backend stack: SymPy, NetworkX, Z3, and Python-FLINT. A normal Python or npm installation therefore exposes the same built-in Python-backed operation portfolio. The tested binary-install contract is CPython 3.12 or 3.13 on glibc Linux x86-64; the release gate installs the built wheel and starts Jacobian on both Python versions. Other systems may have compatible upstream wheels, but are not part of the tested release contract yet. In particular, Alpine/musl cannot install the complete mandatory stack from PyPI.

The Python distribution contains the mathematical kernel, CLI, and MCP server. The npm package deterministically maps its exact package version to the corresponding uvx invocation.

Compute one bounded result

An ordinary operation returns mathematics first. For example, matrix.determinant.compute accepts one exact rational matrix and returns its determinant directly. Callers compose results by passing their typed values to a subsequent operation.

Available mathematics

The built-in portfolio covers work in:

  • polynomial maps and polynomial algebra;
  • exact linear algebra;
  • graphs, paths, colorings, and isomorphism;
  • bounded SAT and SMT solving;
  • finite algebra, probability, geometry, and topology; and
  • Lean source elaboration.

SAT and SMT operations use the maintained Z3 Python binding directly. The optional lean.check operation runs one bounded source snippet in the fixed Lean service environment, using a request-scoped temporary directory and returning typed diagnostics. Use math.find to search for an operation, browse an unfamiliar domain, and inspect one operation before calling math.run once.

See the domain operation library for the maintained operation portfolio and backend requirements.

Status

Jacobian 0.13.0 is pre-stable. Its published package and operation contracts describe the supported surface; experimental operation contracts may change between releases.

Documentation

Contributing

Jacobian uses Python 3.12, uv, and a small Makefile:

make setup
make test-math
make check

Read CONTRIBUTING.md before changing code. It documents focused test commands, verification rules, documentation placement, and pull-request expectations.

License

MIT

Frequently Asked Questions

What is jacobian?

jacobian is an open-source ai agents skill for AI coding assistants such as Claude Code, Codex CLI, and ChatGPT, built by morluto. A universal, atomic library of mathematics and tools for agents to compose them. It has 55 GitHub stars.

Is jacobian safe to use?

Yes. jacobian passed SkillsLLM's automated security scan — a dependency vulnerability audit plus prompt-injection heuristics — with no high-severity issues. You can read the full report in the Security Report section on this page.

How do I install jacobian?

Clone the repository with "git clone https://github.com/morluto/jacobian" and add it to your Claude Code skills directory (see the Installation section above).

What programming language is jacobian written in?

jacobian is primarily written in Python. It is open-source under morluto on GitHub, so you can review or fork the full source.

Are there alternatives to jacobian?

Yes. SkillsLLM lists many other AI Agents skills you can browse and compare side by side. Open the AI Agents category from the badge at the top of this page, or use the Related Skills and comparison links further down to weigh jacobian against similar tools.

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