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README.md

AutoFlow

AutoFlow

pingcap%2Fautoflow | Trendshift

Backend Docker Image Version Frontend Docker Image Version E2E Status

[!WARNING] Autoflow is still in the early stages of development. And we are actively working on it, the next move is to make it to a python package and make it a RAG solution e.g. pip install autoflow-ai. If you have any questions or suggestions, please feel free to contact us on Discussion.

Introduction

AutoFlow is an open source graph rag (graphrag: knowledge graph rag) based knowledge base tool built on top of TiDB Vector and LlamaIndex and DSPy.

Features

  1. Perplexity-style Conversational Search page: Our platform features an advanced built-in website crawler, designed to elevate your browsing experience. This crawler effortlessly navigates official and documentation sites, ensuring comprehensive coverage and streamlined search processes through sitemap URL scraping.

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  1. Embeddable JavaScript Snippet: Integrate our conversational search window effortlessly into your website by copying and embedding a simple JavaScript code snippet. This widget, typically placed at the bottom right corner of your site, facilitates instant responses to product-related queries.

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Deploy

Tech Stack

  • TiDB – Database to store chat history, vector, json, and analytic
  • LlamaIndex - RAG framework
  • DSPy - The framework for programming—not prompting—foundation models
  • Next.js – Framework
  • Tailwind CSS – CSS framework
  • shadcn/ui - Design

Contributing

We welcome contributions from the community. If you are interested in contributing to the project, please read the Contributing Guidelines.

Performance Stats of pingcap/autoflow - Last 28 days

License

AutoFlow is open-source under the Apache License, Version 2.0. You can find it here.

Contact

You can reach out to us on Discord.

关于 About

pingcap/autoflow is a Graph RAG based and conversational knowledge base tool built with TiDB Serverless Vector Storage. Demo: https://tidb.ai
chatbotcotgraphragknowledge-graphmysqlragserverlessvector-database

语言 Languages

TypeScript52.9%
Python41.9%
Jupyter Notebook3.8%
SCSS0.6%
CSS0.2%
Shell0.2%
Dockerfile0.2%
JavaScript0.1%
HTML0.1%
Makefile0.1%
Mako0.0%

提交活跃度 Commit Activity

代码提交热力图
过去 52 周的开发活跃度
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峰值: 11次/周
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