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sistemas de tomada de decisão

  • A Python framework that orchestrates multiple AI agents collaboratively, integrating LLMs, vector databases, and custom tool workflows.
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    What is Multi-Agent AI Orchestration?
    Multi-Agent AI Orchestration allows teams of autonomous AI agents to work together on predefined or dynamic goals. Each agent can be configured with unique roles, capabilities, and memory stores, interacting through a central orchestrator. The framework integrates with LLM providers (e.g., OpenAI, Cohere), vector databases (e.g., Pinecone, Weaviate), and custom user-defined tools. It supports extending agent behaviors, real-time monitoring, and logging for audit trails and debugging. Ideal for complex workflows, such as multi-step question answering, automated content generation pipelines, or distributed decision-making systems, it accelerates development by abstracting inter-agent communication and providing a pluggable architecture for rapid experimentation and production deployment.
    Multi-Agent AI Orchestration Core Features
    • Multi-agent workflow orchestration
    • Agent registration and role assignment
    • LLM integration (OpenAI, Cohere, etc.)
    • Vector database integration (Pinecone, Weaviate)
    • In-memory and external memory management
    • Custom tool and action invocation
    • Real-time monitoring and logging
    • Modular and extensible architecture
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