Showing 3 open source projects for "rag"

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  • 1
    Chipper

    Chipper

    AI interface for tinkerers (Ollama, Haystack RAG, Python)

    Chipper is an AI interface designed for tinkerers and developers, providing a platform to experiment with various AI models and techniques. It offers integration with tools like Ollama and Haystack for Retrieval-Augmented Generation (RAG), enabling users to build and test AI applications efficiently. Chipper supports Python and provides a modular architecture, allowing for customization and extension based on specific project requirements.
    Downloads: 0 This Week
    Last Update:
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  • 2
    Open WebUI

    Open WebUI

    User-friendly AI Interface

    Open WebUI is an extensible, feature-rich, and user-friendly self-hosted AI platform designed to operate entirely offline. It supports various LLM runners like Ollama and OpenAI-compatible APIs, with a built-in inference engine for Retrieval Augmented Generation (RAG), making it a powerful AI deployment solution. Key features include effortless setup via Docker or Kubernetes, seamless integration with OpenAI-compatible APIs, granular permissions and user groups for enhanced security, responsive design across devices, and full Markdown and LaTeX support for enriched interactions. Additionally, Open WebUI offers a Progressive Web App (PWA) for mobile devices, providing offline access and a native app-like experience. ...
    Downloads: 119 This Week
    Last Update:
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  • 3
    Superduper

    Superduper

    Superduper: Integrate AI models and machine learning workflows

    Superduper is a Python-based framework for building end-2-end AI-data workflows and applications on your own data, integrating with major databases. It supports the latest technologies and techniques, including LLMs, vector-search, RAG, and multimodality as well as classical AI and ML paradigms. Developers may leverage Superduper by building compositional and declarative objects that out-source the details of deployment, orchestration versioning, and more to the Superduper engine. This allows developers to completely avoid implementing MLOps, ETL pipelines, model deployment, data migration, and synchronization. ...
    Downloads: 0 This Week
    Last Update:
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