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Constrained multi-object Markov decision scheduling with application to radar resource management

机译:用应用于雷达资源管理的约束多对象马尔可夫决策调度

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Hierarchial radar resource management uses multi object Markov decision scheduling with a constraint on the resources. In this paper we give a detailed description of constrained multi-object Markov decision scheduling in its general form and the separation that is achieved in the dynamic programming level using Lagrange multipliers. We then apply this general model to obtain a simultaneous beam and waveform scheduling method for radars based on an objective function that depends on both state and action. This method extends on a previous hierarchial method for beam scheduling with an objective function defined only on state. We further improve the objective function based on entropy reduction. This criterion makes the resource management to be more flexible in favor of measurements that carry more information.
机译:分层雷达资源管理使用具有对资源约束的多对象马尔可夫决策调度。在本文中,我们在使用LAGRANG乘法器中,给出了其一般形式和在动态编程水平中实现的分离的约束多对象马尔可夫决策调度的详细描述。然后,我们应用该一般模型以基于依赖于状态和动作的目标函数来获得雷达的同时光束和波形调度方法。该方法在前一个分层方法上延伸,用于光束调度,其具有仅在状态上定义的目标函数。我们进一步提高了基于熵的目标函数。该标准使资源管理更灵活,有利于提供更多信息的测量。

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