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Back to labring/fastgpt

Open-source alternatives to FastGPT

30 open-source projects similar to labring/fastgpt, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best FastGPT alternative.

  • hkuds/rag-anythingAvatar de HKUDS

    HKUDS/RAG-Anything

    21,372Voir sur GitHub↗

    RAG-Anything is a retrieval-augmented generation framework designed to index diverse document formats and perform semantic search using local machine learning models. It functions as a local multimodal data processor, extracting and organizing information from various file types into a unified knowledge base to facilitate private document analysis. The system distinguishes itself through its high-throughput ingestion engine, which processes large batches of documents into searchable vector embeddings. By executing machine learning models directly on local hardware, the framework ensures that

    Pythonmulti-modal-ragretrieval-augmented-generation
    Voir sur GitHub↗21,372
  • cinnamon/kotaemonAvatar de Cinnamon

    Cinnamon/kotaemon

    25,139Voir sur GitHub↗

    Kotaemon is an orchestration framework designed for building modular, agentic workflows that integrate document processing, retrieval-augmented generation, and multi-step reasoning. It provides a comprehensive platform for developing document-based question answering systems, allowing users to chain language models, prompt templates, and external tools into complex, automated pipelines. The system distinguishes itself through a highly modular architecture that emphasizes component-based composition and schema-driven data exchange. It supports autonomous agents capable of decomposing complex q

    Pythonchatbotllmsopen-source
    Voir sur GitHub↗25,139
  • quivrhq/quivrAvatar de QuivrHQ

    QuivrHQ/quivr

    39,165Voir sur GitHub↗

    Quivr is a retrieval-augmented generation platform designed to transform raw documents into searchable knowledge bases. It functions as a centralized environment where users can ingest files, index them into vector databases, and interact with language models to receive contextually relevant, data-backed responses. The platform distinguishes itself through an agentic workflow orchestrator that sequences retrieval tasks, tool execution, and model interactions to resolve complex, multi-step queries. This engine is entirely configuration-driven, allowing users to define document ingestion, chunk

    Pythonaiapichatbot
    Voir sur GitHub↗39,165

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  • microsoft/graphragAvatar de microsoft

    microsoft/graphrag

    33,792Voir sur GitHub↗

    GraphRAG is a data processing pipeline and retrieval engine designed to transform unstructured text into interconnected knowledge graphs. By utilizing language models to extract entities and relationships, it builds structured representations of information that enable context-aware retrieval for downstream applications. The system distinguishes itself through hierarchical graph clustering and large-scale data synthesis, which organize massive document corpora into multi-level structures. This approach allows for both vector-based semantic searches and graph-based traversals, providing a comp

    Pythongptgpt-4gpt4
    Voir sur GitHub↗33,792
  • infiniflow/ragflowAvatar de infiniflow

    infiniflow/ragflow

    82,922Voir sur GitHub↗

    This project is a comprehensive retrieval-augmented generation platform designed for building, managing, and deploying knowledge-based AI applications. It provides a unified environment for organizing datasets, configuring conversational chat assistants, and developing autonomous agents that execute multi-step reasoning workflows. By integrating document intelligence with advanced retrieval pipelines, the platform enables the creation of grounded, verifiable responses supported by traceable citations. The platform distinguishes itself through deep document understanding and sophisticated know

    Pythonagentagenticagentic-ai
    Voir sur GitHub↗82,922
  • qdrant/qdrantAvatar de qdrant

    qdrant/qdrant

    32,372Voir sur GitHub↗

    Qdrant is a high-performance vector similarity database designed to store, index, and search high-dimensional vectors alongside structured metadata. It functions as a distributed search engine that manages large-scale data clusters, providing low-latency retrieval and complex filtering capabilities. The system is built to serve as a specialized middleware layer, connecting machine learning pipelines and AI agents to persistent storage for intelligent information retrieval and recommendation tasks. The platform distinguishes itself through advanced retrieval techniques, including support for h

    Rustai-searchai-search-engineembeddings-similarity
    Voir sur GitHub↗32,372
  • getzep/graphitiAvatar de getzep

    getzep/graphiti

    22,936Voir sur GitHub↗

    Graphiti is a backend framework and memory server designed to provide artificial intelligence agents with persistent, time-aware knowledge graph storage. It functions as a memory layer that enables agents to maintain context across long-term interactions by recording and evolving structured data over time. The system distinguishes itself through a specialized temporal graph database that tracks how entities and relationships change using validity windows. By combining semantic vector similarity, keyword matching, and graph topology traversal, the engine performs hybrid retrieval to locate rel

    Pythonagentsgraphllms
    Voir sur GitHub↗22,936
  • flagopen/flagembeddingAvatar de FlagOpen

    FlagOpen/FlagEmbedding

    11,833Voir sur GitHub↗

    FlagEmbedding is a comprehensive toolkit designed for training, benchmarking, and deploying embedding models, retrieval systems, and augmented generation pipelines. It provides the necessary infrastructure to transform text into high-dimensional vector representations and organize them into searchable structures for semantic search applications. The framework distinguishes itself through specialized capabilities for fine-tuning pre-trained embedding and reranking models on domain-specific datasets. By allowing users to adapt models to unique vocabularies and specialized retrieval tasks, it en

    Pythonembeddingsinformation-retrievalllm
    Voir sur GitHub↗11,833
  • chroma-core/chromaAvatar de chroma-core

    chroma-core/chroma

    26,198Voir sur GitHub↗

    Chroma is a specialized vector database designed to index and retrieve high-dimensional data representations for semantic similarity search. It functions as a comprehensive platform for information retrieval, enabling the storage and management of unstructured documents alongside structured metadata. By mapping data into numerical representations, the system facilitates rapid similarity lookups across large datasets. The platform distinguishes itself through a hybrid search infrastructure that combines dense vector embeddings with sparse keyword and regular expression matching to balance sema

    Rustaidatabasedocument-retrieval
    Voir sur GitHub↗26,198
  • llmware-ai/llmwareAvatar de llmware-ai

    llmware-ai/llmware

    14,838Voir sur GitHub↗

    llmware is a Python framework for AI agent orchestration and model management, designed to coordinate multi-model workflows and autonomous agents. It provides a unified model catalog and standardized interface to execute specialized language models for complex research, analysis, and structured data generation. The project distinguishes itself through its heavy emphasis on local execution and quantized inference, allowing models to run on private infrastructure using CPU, GPU, and NPU acceleration via runtimes like ONNX and OpenVino. It features a specialized ability to translate natural lang

    Python
    Voir sur GitHub↗14,838
  • netease-youdao/qanythingAvatar de netease-youdao

    netease-youdao/QAnything

    14,020Voir sur GitHub↗

    QAnything is a retrieval-augmented generation application framework and self-hosted AI interface. It functions as a system that combines a vector database knowledge base, a document parsing service, and a hybrid search engine to generate answers based on private user data. The project features a modular pipeline architecture that allows users to independently replace components such as parsers, embedding models, and reranking engines. It supports local-first model deployment and offline operation to ensure data privacy, and includes a two-stage retrieval pipeline that merges dense vector embe

    Python
    Voir sur GitHub↗14,020
  • marker-inc-korea/autoragAvatar de Marker-Inc-Korea

    Marker-Inc-Korea/AutoRAG

    4,833Voir sur GitHub↗

    AutoRAG is an automation layer and optimization tool for retrieval-augmented generation. It provides a framework for measuring pipeline performance through an evaluation system and an automated search strategy that identifies the most effective combinations of retrieval and generation modules. The system distinguishes itself through AutoML-style optimization, using hyperparameter grid searches and automated trials to find the highest performing architectural configuration for a specific dataset. It includes a specialized dataset generator that creates synthetic question-answer pairs and groun

    Python
    Voir sur GitHub↗4,833
  • weaviate/verbaAvatar de weaviate

    weaviate/Verba

    7,715Voir sur GitHub↗

    Verba is a retrieval-augmented generation interface and chatbot that uses Weaviate to provide factual answers based on private datasets. It functions as a vector database knowledge base, combining a hybrid search engine with an orchestration interface to connect various large language model providers and embedding services. The system differentiates itself through a RAG pipeline manager for adjusting text chunking rules and retrieval settings, alongside a 3D vector space visualization tool for analyzing the spatial organization and clustering of high-dimensional embeddings. It employs a modul

    Python
    Voir sur GitHub↗7,715
  • alibaba/zvecAvatar de alibaba

    alibaba/zvec

    5,198Voir sur GitHub↗

    zvec is an embedded vector database engine and indexing library designed for high-dimensional similarity search. It functions as a hybrid search engine and a retrieval-augmented generation knowledge base, allowing for the storage and retrieval of dense and sparse vectors. The system is distinguished by its hybrid retrieval pipeline, which fuses vector similarity, full-text keyword matching, and scalar metadata filtering into single query operations. It supports a plugin-based model integration system for registering custom embedding models and rerankers, as well as language bindings for nativ

    C++ann-searchembedded-databaserag
    Voir sur GitHub↗5,198
  • eosphoros-ai/db-gptAvatar de eosphoros-ai

    eosphoros-ai/DB-GPT

    18,999Voir sur GitHub↗

    DB-GPT is an agentic data analysis platform and business intelligence AI that functions as a large language model data assistant. It provides a text-to-SQL interface and a sandboxed code execution environment to translate natural language into executable database queries and Python scripts. The platform utilizes iterative agentic reasoning to plan and execute multi-step data analysis workflows through tool calls. It features a modular skill-based extension system that allows domain knowledge and analysis workflows to be packaged into reusable functional components. The system integrates data

    Pythonagentsbgidatabase
    Voir sur GitHub↗18,999
  • hkuds/lightragAvatar de HKUDS

    HKUDS/LightRAG

    36,651Voir sur GitHub↗

    LightRAG is a graph-based retrieval framework designed to build retrieval-augmented generation pipelines. It structures unstructured text into knowledge graphs, enabling multi-hop reasoning and complex query synthesis across large document collections. By integrating dense vector embeddings with structured knowledge graphs, the system facilitates both similarity-based and relationship-aware information retrieval. The framework distinguishes itself through a dual-level retrieval strategy that combines low-level keyword matching with high-level semantic graph traversal to capture both specific

    Pythongenaigptgpt-4
    Voir sur GitHub↗36,651
  • mintplex-labs/anything-llmAvatar de Mintplex-Labs

    Mintplex-Labs/anything-llm

    61,663Voir sur GitHub↗

    This platform serves as a comprehensive environment for managing private language models, document knowledge bases, and automated agent workflows within secure local infrastructure. It functions as a document-aware workspace that enables users to ingest diverse file formats into searchable repositories, ensuring that all data processing and model inference remain within private, local environments to maintain data sovereignty. The system distinguishes itself through a modular agentic engine that allows for the definition of custom skills and external tool execution. By utilizing a multi-model

    JavaScriptai-agentscustom-ai-agentsdeepseek
    Voir sur GitHub↗61,663
  • ragapp/ragappAvatar de ragapp

    ragapp/ragapp

    4,438Voir sur GitHub↗

    This project is an agentic retrieval-augmented generation platform and orchestration framework designed to connect large language models to private enterprise data. It serves as a self-hosted AI gateway that integrates vector databases and external tools to automate complex information retrieval and generation tasks. The system differentiates itself through an AI agent workflow builder that orchestrates multiple specialized agents with distinct roles to solve multi-step problems. It includes a dedicated vector database integration interface for indexing private documents and a secure sandbox

    TypeScript
    Voir sur GitHub↗4,438
  • dokploy/dokployAvatar de Dokploy

    Dokploy/dokploy

    34,901Voir sur GitHub↗

    Dokploy is a self-hosted platform-as-a-service designed to simplify the deployment and management of containerized applications and databases. It provides a centralized control plane that decouples administrative management from application workloads, allowing users to oversee infrastructure across multiple server nodes through a unified web interface or a command-line tool. The platform distinguishes itself through an extensive library of pre-configured application templates, enabling the rapid deployment of databases, identity providers, and various productivity or development tools. It sup

    TypeScriptbackendbackupsdatabases
    Voir sur GitHub↗34,901
  • squidfunk/mkdocs-materialAvatar de squidfunk

    squidfunk/mkdocs-material

    26,949Voir sur GitHub↗

    This project is a comprehensive documentation site framework and static site generator theme designed to transform markdown files into professional, responsive websites. It functions as a technical content platform that supports complex documentation projects, including multi-project management, blog workflows, and advanced content formatting. By processing source files through an extensible pipeline, it generates self-contained HTML sites that can be hosted on any web server without a database. What distinguishes this framework is its focus on developer experience and highly configurable bui

    Pythondocumentationframeworkmaterial-design
    Voir sur GitHub↗26,949
  • voltagent/awesome-claude-code-subagentsAvatar de VoltAgent

    VoltAgent/awesome-claude-code-subagents

    21,906Voir sur GitHub↗

    This project provides a framework for managing multi-agent systems, designed to automate complex software development, infrastructure, and business workflows. It functions as a multi-agent workflow orchestrator that routes tasks to domain-specific workers while maintaining state persistence and infrastructure automation. By leveraging large language models, the system decomposes high-level objectives into actionable plans, ensuring that complex operations are executed with consistency and reliability. The framework distinguishes itself through its hierarchical agent registry and policy-driven

    Shellai-agent-frameworkai-agent-toolsai-agents
    Voir sur GitHub↗21,906
  • thedotmack/claude-memAvatar de thedotmack

    thedotmack/claude-mem

    82,698Voir sur GitHub↗

    Claude-mem is an agentic memory persistence system designed to provide AI assistants with long-term context across multiple development sessions. It functions as a background orchestrator that captures, summarizes, and indexes interaction history, allowing models to maintain continuity and recall technical decisions from past tasks. By utilizing a vector-augmented context engine, the system injects relevant historical observations into active sessions, ensuring that AI agents remain informed without exceeding finite token budgets. The project distinguishes itself through an endless memory arc

    JavaScriptaiai-agentsai-memory
    Voir sur GitHub↗82,698
  • open-webui/open-webuiAvatar de open-webui

    open-webui/open-webui

    142,694Voir sur GitHub↗

    Open WebUI is a self-hosted, web-based platform designed for interacting with local and remote artificial intelligence models. It functions as a unified interface and orchestration suite, enabling users to build, deploy, and manage specialized AI agents equipped with custom instructions, external tool access, and private knowledge bases. The platform distinguishes itself through a modular architecture that supports complex AI workflows. It features a plugin-based framework for custom logic and pipeline-based request processing, allowing developers to filter or transform data streams before th

    Pythonaillmllm-ui
    Voir sur GitHub↗142,694
  • payloadcms/payloadAvatar de payloadcms

    payloadcms/payload

    43,053Voir sur GitHub↗

    Payload is a headless content management system and application framework that uses a code-first approach to define data schemas and administrative interfaces. By utilizing a centralized, type-safe configuration object, it automatically generates database schemas, API endpoints, and a fully customizable admin panel. The system is built on a database-agnostic architecture, allowing it to interface with various storage engines while providing a unified, type-safe API for server-side operations, REST, and GraphQL. What distinguishes Payload is its deep extensibility and developer-centric design.

    TypeScriptcmscontent-managementcontent-management-system
    Voir sur GitHub↗43,053
  • othmanadi/planning-with-filesAvatar de OthmanAdi

    OthmanAdi/planning-with-files

    14,139Voir sur GitHub↗

    Planning with files is an enterprise knowledge graph platform designed to transform unstructured organizational data into a searchable, interconnected network. By utilizing a graph-based retrieval-augmented generation engine, the system grounds language model outputs in verified internal data, ensuring that responses are explainable, traceable, and free from hallucinations. The platform distinguishes itself through a focus on data sovereignty and secure, private infrastructure deployment. It enables organizations to maintain full control over sensitive information by processing data locally o

    Pythonadalagentagent-skills
    Voir sur GitHub↗14,139
  • chillzhuang/springbladeAvatar de chillzhuang

    chillzhuang/SpringBlade

    6,900Voir sur GitHub↗

    SpringBlade is a development framework and platform designed for building multi-tenant SaaS applications. It provides a comprehensive scaffold for both Spring Cloud microservices and monolithic Spring Boot architectures, enabling the rapid construction of enterprise-grade software. The platform distinguishes itself through integrated LLM orchestration and industrial IoT management. It features an LLM orchestration platform that combines large language models with knowledge bases and visual AI agent workflows, alongside an IoT hub for device connectivity, state synchronization, and edge flow o

    PLpgSQL
    Voir sur GitHub↗6,900
  • truefoundry/cognitaAvatar de truefoundry

    truefoundry/cognita

    4,317Voir sur GitHub↗

    Cognita is a retrieval augmented generation orchestration framework used to build pipelines that connect document stores and language models to provide grounded answers. It functions as a document ingestion pipeline and a vector database integrator, managing the process of loading, parsing, and indexing files into a searchable knowledge base. The system includes a language model gateway proxy that provides a unified API to interact with multiple different model providers. This routing layer decouples the application from specific vendors, allowing requests to be proxied through a provider-agn

    Pythonagentaiapplication
    Voir sur GitHub↗4,317
  • flowiseai/flowiseAvatar de FlowiseAI

    FlowiseAI/Flowise

    53,641Voir sur GitHub↗

    Flowise is a low-code platform designed for building and deploying complex language model workflows through a visual, node-based interface. It functions as an orchestrator for autonomous multi-agent systems, allowing users to construct conversational pipelines by connecting language models, memory stores, and external tools on a drag-and-drop canvas. The platform distinguishes itself through its support for sophisticated agentic patterns, including supervisor-worker delegation and iterative reasoning strategies. Users can design directed acyclic graphs to manage conditional branching, state p

    TypeScriptagentic-aiagentic-workflowagents
    Voir sur GitHub↗53,641
  • chaitin/pandawikiAvatar de chaitin

    chaitin/PandaWiki

    9,792Voir sur GitHub↗

    PandaWiki is an AI-powered wiki and knowledge base platform that integrates large language models to automate content creation and information retrieval. It functions as a retrieval-augmented generation system for building technical wikis, FAQs, and documentation sites that provide automated answers grounded in a private knowledge base. The system acts as an enterprise knowledge bot, allowing the deployment of AI chatbots via web widgets and messaging applications like Discord. It further extends its operational capabilities by integrating with Model Context Protocol servers to connect the AI

    TypeScriptaidocsdocument
    Voir sur GitHub↗9,792
  • run-llama/llama_indexAvatar de run-llama

    run-llama/llama_index

    50,306Voir sur GitHub↗

    LlamaIndex is a comprehensive development framework designed to connect private or external data sources to large language models. It functions as a data-centric toolkit that enables the construction of retrieval-augmented generation systems, allowing developers to build applications that provide context-aware answers based on specific organizational information. The project distinguishes itself through a robust agentic orchestration engine that supports the creation of autonomous agents capable of multi-step reasoning, memory management, and complex tool execution. Beyond simple retrieval, i

    Pythonagentsapplicationdata
    Voir sur GitHub↗50,306