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The MADP Toolbox: An Open-Source Library for Planning and Learning in (Multi-)Agent Systems

机译:MADP Toolbox:用于在(多)代理系统中规划和学习的开源库

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This article describes the MultiAgent Decision Process (MADP) toolbox, a software library to support planning and learning for intelligent agents and multiagent systems in uncertain environments. Some of its key features are that it supports partially observable environments and stochastic transition models; has unified support for single- and multiagent systems; provides a large number of models for decisiontheoretic decision making, including one-shot decision making (e.g., Bayesian games) and sequential decision making under various assumptions of observability and cooperation, such as Dec-POMDPs and POSGs; provides tools and parsers to quickly prototype new problems; provides an extensive range of planning and learning algorithms for singleand multiagent systems; and is written in C++ and designed to be extensible via the object-oriented paradigm.
机译:本文介绍了多层决策过程(MADP)工具箱,一个软件库,用于支持不确定环境中智能代理和多算法系统的规划和学习。其一些主要特征是它支持部分可观察的环境和随机转换模型;对单一和多层系统有统一的支持;提供决策决策的大量模型,包括单次决策制作(例如,贝叶斯游戏)和在可观察性和合作的各种假设下的连续决策,如DEC-POMDPS和POSGS;提供工具和解析器,以快速原型新问题;为Singleand Multi8Gents系统提供广泛的规划和学习算法;并用C ++编写,旨在通过面向对象的范例来扩展。

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