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pictmcp

MCP (Model Context Protocol) server that provides pairwise combinatorial testing capabilities to AI assistants.

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Scored 4 months ago · breakdown

About pictmcp

pictmcp is an MCP server published by git+takeyaqa in the Developer Tools category: mCP (Model Context Protocol) server that provides pairwise combinatorial testing capabilities to AI assistants. It has been installed 0 times through Conduid.

Install

Install
npx pictmcp
Claude Code
claude mcp add pictmcp -- npx -y pictmcp
npx
npx -y pictmcp

This server has no ConduID identity, so agent calls to it are not receipted. Pin the version you install and review the source before granting it credentials.

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README

PictMCP

[!CAUTION] This package has been archived and will no longer be maintained. Please consider using takeyaqa/tester-skills.

Pairwise testing for your AI assistant

PictMCP is an MCP server for software developers who design test cases with AI assistants, providing reliable, algorithm-correct pairwise test generation.

Why use this?

  • AI is great at test design, but not at combinatorial math.
  • Pairwise generation must be deterministic and correct.
  • PictMCP separates thinking (AI) from calculation (PICT).

Prefer a GUI? Check out PictRider.

Features

  • 🔒 Local Processing - All processing runs locally with no external network calls
  • WebAssembly Powered - Fast execution using Microsoft's PICT algorithm compiled to WebAssembly
  • 🔗 Constraint Support - Define constraints to filter out invalid parameter combinations
  • 📊 Structured Output - Returns well-structured JSON results for easy integration

Installation

Prerequisites

MCP Client Configuration

Add the following configuration to your MCP client. This is an example configuration; the exact format may vary depending on your client. Please refer to your MCP client's documentation for details.

{
  "mcpServers": {
    "PictMCP": {
      "command": "npx",
      "args": ["-y", "pictmcp"]
    }
  }
}

Quick Start

Once installed, you can ask your AI assistant to generate test cases using pairwise combinatorial testing.

Example Prompt

Generate test cases for a login form with the following parameters:

  • Browser: Chrome, Firefox, Safari
  • OS: Windows, macOS, Linux
  • Language: English, Japanese, Spanish

The AI assistant will use the generate-test-cases tool to create an optimized set of test cases that covers all pairwise combinations.

Example Result

AI assistants typically format the results as a table:

# Browser OS Language
1 Chrome Linux Japanese
2 Chrome macOS Spanish
3 Safari Linux Spanish
4 Firefox Linux English
5 Safari Windows English
6 Firefox Windows Spanish
7 Firefox macOS Japanese
8 Safari macOS Japanese
9 Chrome macOS English
10 Chrome Windows Japanese

Example with Constraints

Generate test cases for:

  • Browser: Chrome, Firefox, Safari
  • OS: Windows, macOS, Linux
  • Language: English, Japanese, Spanish

With constraint: Safari only works on macOS

You can describe constraints in plain language — the AI assistant will convert them into PICT constraint syntax automatically.

# Browser OS Language
1 Firefox Linux Spanish
2 Chrome Windows Spanish
3 Firefox Windows Japanese
4 Chrome Linux Japanese
5 Chrome macOS English
6 Firefox Windows English
7 Chrome Linux English
8 Safari macOS Spanish
9 Safari macOS Japanese
10 Firefox macOS Spanish
11 Safari macOS English

FAQ

Does this communicate with external servers?

No. All processing runs locally with no external network calls.

I already use the pict CLI. Do I need this?

If your AI agent can execute CLI commands directly, you may not need this tool. However, PictMCP provides:

  • A standardized MCP interface for AI assistants
  • No need to install PICT separately (WebAssembly-based)
  • Structured JSON output instead of TSV

What is pairwise testing?

Pairwise testing (also known as all-pairs testing) is a combinatorial testing method that generates test cases covering all possible pairs of input parameters. This significantly reduces the number of test cases while maintaining high defect detection rates.

What constraint syntax is supported?

You don't need to write PICT syntax directly. Simply describe constraints in natural language and your AI assistant will handle the conversion. PictMCP supports the full PICT constraint syntax. See the PICT documentation for details.

License

This project is licensed under the MIT License—see the LICENSE file for details.

Disclaimer

PictMCP is provided "as is", without warranty of any kind. The authors are not liable for any damages arising from its use.

Generated test cases do not guarantee complete coverage or the absence of defects. Please supplement pairwise testing with other strategies as appropriate.

PictMCP is an independent project and is not affiliated with Microsoft Corporation.


If you find PictMCP useful, please consider starring the repository.

README mirrored from the source repository 4 months ago. The original is authoritative.

Questions

About pictmcp

How do I install pictmcp?

Run npx pictmcp, then add the server to your MCP client's configuration. Conduid has recorded 0 installs, so the command is known to work with current clients.

Is pictmcp safe to use with an AI agent?

Its trust score is 39 out of 100 (low). It passes 0 of 1 static security checks; the failures are listed above. It has no ConduID identity yet, so agent calls to it are not receipted.

Is pictmcp still maintained?

Conduid hasn't recorded a commit date for this repository yet. Check the repository directly for recent activity.