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統合モニタリング

  • LLMFlow is an open-source framework enabling the orchestration of LLM-based workflows with tool integration and flexible routing.
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    What is LLMFlow?
    LLMFlow provides a declarative way to design, test, and deploy complex language model workflows. Developers create Nodes which represent prompts or actions, then chain them into Flows that can branch based on conditions or external tool outputs. Built-in memory management tracks context between steps, while adapters enable seamless integration with OpenAI, Hugging Face, and others. Extend functionality via plugins for custom tools or data sources. Execute Flows locally, in containers, or as serverless functions. Use cases include creating conversational agents, automated report generation, and data extraction pipelines—all with transparent execution and logging.
    LLMFlow Core Features
    • Declarative LLM workflow chaining
    • Branching logic and conditional flows
    • Contextual memory management
    • External tool integration
    • Plugin architecture
    • Adapters for multiple LLM providers
    • Logging and monitoring support
    • Error handling and retry policies
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