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Graphrag

A modular graph-based Retrieval-Augmented Generation (RAG) system

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Claude CodeCursorWindsurfVS CodeDeveloper tool

About

GraphRAG

πŸ‘‰ Microsoft Research Blog Post πŸ‘‰ Read the docs πŸ‘‰ GraphRAG Arxiv

Overview

The GraphRAG project is a data pipeline and transformation suite that is designed to extract meaningful, structured data from unstructured text using the power of LLMs.

To learn more about GraphRAG and how it can be used to enhance your LLM's ability to reason about your private data, please visit the Microsoft Research Blog Post.

Quickstart

To get started with the GraphRAG system we recommend trying the command line quickstart.

Repository Guidance

This repository presents a methodology for using knowledge graph memory structures to enhance LLM outputs. Please note that the provided code serves as a demonstration and is not an officially supported Microsoft offering.

⚠️ Warning: GraphRAG indexing can be an expensive operation, please read all of the documentation to understand the process and costs involved, and start small.

Diving Deeper

Prompt Tuning

Using _GraphRAG_ with your data out of the box may not yield the best possible results. We strongly recommend to fine-tune your prompts following the Prompt Tuning Guide in our documentation.

Versioning

Please see the breaking changes document for notes on our approach to versioning the project.

Always run `graphrag init --root [path] --force` between minor version bumps to ensure you have the latest config format. Run the provided migration notebook between major version bumps if you want to avoid re-indexing prior datasets. Note that this will overwrite your configuration and prompts, so backup if necessary.

Responsible AI FAQ

See RAI_TRANSPARENCY.md

Don't lose this

Three weeks from now, you'll want Graphrag again. Will you remember where to find it?

Save it to your library and the next time you need Graphrag, it’s one tap away β€” from any AI app you use. Group it into a bench with the rest of the team for that kind of task and you can pull the whole stack at once.

⚑ Pro tip for geeks: add a-gnt πŸ€΅πŸ»β€β™‚οΈ as a custom connector in Claude or a custom GPT in ChatGPT β€” one click and your library is right there in the chat. Or, if you’re in an editor, install the a-gnt MCP server and say β€œuse my [bench name]” in Claude Code, Cursor, VS Code, or Windsurf.

πŸ€΅πŸ»β€β™‚οΈ

a-gnt's Take

Our honest review

A modular graph-based Retrieval-Augmented Generation (RAG) system. Best for anyone looking to make their AI assistant more capable in search & web. It's completely free and works across most major AI apps. This one just landed in the catalog β€” worth trying while it's fresh.

Tips for getting started

1

Tap "Get" above, pick your AI app, and follow the steps. Most installs take under 30 seconds.

What's New

Version 1.0.06 days ago

Imported from GitHub

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