genpark-financial-audit

MCP serverCommerce & finance

Arithmetic consistency checks for supplied financial statement data.

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Getting started

  1. Save this item in Your setup as a reference.
  2. Read the source or reference documentation for its setup requirements. Saving it here does not connect it to your AI.
  3. Check this page for availability before trying to install it through ahel.

From the project's README

As published by alpha-park/genpark-complex-financial-formula-audit-validator-skill in README.md.

Arithmetic consistency checks for supplied financial statement data.

This checks supplied numbers and a simplified income-statement model. It does not extract PDFs, verify source authenticity, check accounting compliance, or provide an audit opinion. Monetary values must use consistent units; tolerance defaults to 0.5 of those units.

Install from the GitHub release

Python 3.9 or newer. The library and stdio MCP server have no runtime dependencies.

python -m pip install https://github.com/Alpha-Park/genpark-complex-financial-formula-audit-validator-skill/releases/download/v1.0.1/genpark_financial_audit-1.0.1-py3-none-any.whl

PyPI publication is pending account setup. The intended PyPI project is genpark-financial-audit; do not assume pip install genpark-financial-audit is available until the project is published.

Python usage

from genpark_financial_audit import FinancialFormulaAuditValidator
client = FinancialFormulaAuditValidator()
print(client.run_benchmark_financial_audit())

MCP stdio configuration

After installing the wheel, configure your MCP client with the installed command:

{
  "mcpServers": {
    "genpark-financial-audit": {
      "command": "genpark-financial-audit",
      "args": []
    }
  }
}

If the command is not on PATH, use its absolute path or python -m genpark_financial_audit with the same interpreter where you installed the wheel. The GitHub release also contains a .mcpb bundle for clients supporting desktop extensions. That bundle requires a Python 3.9+ interpreter on PATH; it bundles the server source.

Available tools: audit_balance_sheet, audit_income_statement, audit_cross_footing, run_benchmark_financial_audit. tools/list returns required arguments and JSON schemas. Each MCP process holds its own state. Benchmark tools use isolated instances.

Development

python -m unittest discover -s tests
python -m pip install mcp
python tests/check_mcp.py
python -m pip install build twine
python -m build
python -m twine check dist/*

python mcp_server.py --test runs the deterministic example; it is not a protocol conformance test. The MCP client check exercises initialize, tools/list, tools/call and ping over stdio.

Distribution

GitHub source and release artifacts are the primary distribution until PyPI is configured. Registry submissions are tracked separately; a manifest is not proof of registry acceptance. See PUBLISHING.md for the repeatable PyPI workflow.

MIT license. Maintained by GenPark.

Signals

GitHub stars
7
Last commit
Sep 2026
Advanced
Delivery
genpark-financial-audit MCP server → your ahel connector (mcp.ahel.ai) → your AI.
Item type
mcp-server
Key
io-github-alpha-park-genpark-financial-audit
Source
github.com/alpha-park/genpark-complex-financial-formula-audit-validator-skill