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совместимость с Gym

  • A Python-based multi-agent simulation framework enabling concurrent agent collaboration, competition and training across customizable environments.
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    What is MultiAgentes?
    MultiAgentes provides a modular architecture for defining environments and agents, supporting synchronous and asynchronous multi-agent interactions. It includes base classes for environments and agents, predefined scenarios for cooperative and competitive tasks, tools for customizing reward functions, and APIs for agent communication and observation sharing. Visualization utilities allow real-time monitoring of agent behaviors, while logging modules record performance metrics for analysis. The framework integrates seamlessly with Gym-compatible reinforcement learning libraries, enabling users to train agents using existing algorithms. MultiAgentes is designed for extensibility, allowing developers to add new environment templates, agent types, and communication protocols to suit diverse research and educational use cases.
    MultiAgentes Core Features
    • Predefined environment templates for cooperative and competitive tasks
    • Agent base class with customizable action and observation methods
    • Communication API for inter-agent messaging
    • Reward shaping tools and configurable reward functions
    • Integration with Gym and Stable Baselines for RL training
    • Visualization and real-time monitoring modules
    • Logging and performance metric recording
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