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HIERARCHICAL CLUSTERED REINFORCEMENT MACHINE LEARNING

机译:分层聚类加固机器学习

摘要

A system and method for hierarchical, clustered reinforcement learning is disclosed. A plurality of subject objects may be obtained, and a plurality of clusters of the subject objects may be determined. Clustered reinforcement learning may be performed on each cluster, including training a respective cluster agent for the each cluster. A first cluster of the plurality of clusters may be selected for revision based on selection criteria. After selection of the selected first cluster, individual reinforcement learning may be performed on each individual subject object included in the selected first cluster, including training a respective individual agent for the each individual subject object. An action may be controlled based on a result of the hierarchical, clustered reinforcement learning.
机译:公开了用于分层的,集群的强化学习的系统和方法。可以获得多个对象对象,并且可以确定对象对象的多个聚类。可以在每个集群上执行集群强化学习,包括为每个集群训练各自的集群代理。可以基于选择标准来选择多个集群中的第一集群以进行修订。在选择了所选择的第一集群之后,可以对包括在所选择的第一集群中的每个个体主题对象执行个体强化学习,包括为每个个体主题对象训练各自的个体代理。可以基于分层的,集群的强化学习的结果来控制动作。

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