Top 10 RAG Frameworks Github Repos 2024

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GitHub Repos from "Top 10 RAG Frameworks GitHub Repos 2024"

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In the blog post "Top 10 RAG Frameworks GitHub Repos 2024," the author highlights ten notable Retrieval-Augmented Generation (RAG) frameworks available on GitHub as of 2024. These frameworks integrate retrieval mechanisms with generative AI models to enhance natural language processing (NLP) and AI-driven applications.

  1. Haystack by deepset-ai: An open-source framework enabling powerful search, question-answering, and NLP tasks.
  2. RAGFlow by infiniflow: Combines retrieval-augmented generation with workflow automation to build AI-driven processes.
  3. txtai by neuml: Transforms unstructured text into structured data for search and analysis using RAG techniques.
  4. STORM by stanford-oval: Stanford-developed framework integrating RAG for improved natural language understanding and generation.
  5. LLM-App by pathwaycom: Utilizes large language models alongside retrieval systems to build sophisticated AI applications.
  6. Cognita: Applies RAG for knowledge management and enhanced decision-making processes.
  7. DeepSeek R1: Integrates deep learning models with retrieval systems to improve information extraction and content generation.
  8. Ollama: Enhances conversational AI applications with accurate, context-aware responses through RAG.
  9. Kotaemon: Open-source RAG tool for document Q&A and local knowledge base deployment emphasizing data privacy.
  10. Gemma 2 2B: Advanced RAG-based model suitable for diverse AI language understanding and generation applications.

These repositories collectively offer diverse solutions and approaches to leveraging retrieval-augmented generation, meeting various needs in NLP and AI development.



See also