首页> 外文会议>Annual Allerton Conference on Communication, Control, and Computing; 20040929-1001; Monticello,IL(US) >An Approximate Dynamic Programming Approach to Decentralized Control of Stochastic Systems
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An Approximate Dynamic Programming Approach to Decentralized Control of Stochastic Systems

机译:随机系统分散控制的一种近似动态规划方法

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In this paper we consider the problem of computing decentralized control policies for stochastic systems with finite state and action spaces. Synthesis of optimal decentralized policies for such problems is known to be NP-hard. Here we focus on methods for efficiently computing meaningful suboptimal decentralized control policies. The algorithms we present here are based on approximation of optimal Q-functions. We show that the performance loss associated with choosing decentralized policies with respect to an approximate Q-function is related to the approximation error. We demonstrate the methods developed in this paper with an example of load balancing in a queuing network.
机译:在本文中,我们考虑了具有有限状态和动作空间的随机系统的分散控制策略的计算问题。已知针对此类问题的最佳分散策略的综合方法很难解决。在这里,我们专注于有效计算有意义的次优分散控制策略的方法。我们在此展示的算法基于最佳Q函数的近似值。我们表明,与针对近似Q函数选择分散策略相关的性能损失与近似误差有关。我们以一个排队网络中的负载平衡为例来演示本文中开发的方法。

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