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동적 보상 할당

  • Implements prediction-based reward sharing across multiple reinforcement learning agents to facilitate cooperative strategy development and evaluation.
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    What is Multiagent-Prediction-Reward?
    Multiagent-Prediction-Reward is a research-oriented framework that integrates prediction models and reward distribution mechanisms for multi-agent reinforcement learning. It includes environment wrappers, neural modules for forecasting peer actions, and customizable reward routing logic that adapts to agent performance. The repository provides configuration files, example scripts, and evaluation dashboards to run experiments on cooperative tasks. Users can extend the code to test novel reward functions, integrate new environments, and benchmark against established multi-agent RL algorithms.
    Multiagent-Prediction-Reward Core Features
    • Prediction network modules for peer action forecasting
    • Dynamic reward allocation across multiple agents
    • Environment wrappers for common cooperative benchmarks
    • Configurable training pipelines and hyperparameters
    • Logging and visualization of performance metrics
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