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首页> 外文期刊>Journal of Optimization Theory and Applications >Near-Optimal Controls of Discrete-Time Dynamic Systems Driven by Singularly-Perturbed Markov Chains
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Near-Optimal Controls of Discrete-Time Dynamic Systems Driven by Singularly-Perturbed Markov Chains

机译:奇摄动马尔可夫链驱动的离散动态系统的近最优控制

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This work is devoted to near-optimal controls of large-scale discrete-time nonlinear dynamic systems driven by Markov chains; the underlying problem is to minimize an expected cost function. Our main goal is to reduce the complexity of the underlying systems. To achieve this goal, discrete-time control models under singularly-perturbed Markov chains are introduced. Using a relaxed control representation, our effort is devoted to finding near-optimal controls. Lumping the states in each irreducible class into a single state gives rise to a limit system. Applying near-optimal controls of the limit system to the original system, near-optimal controls of the original system are derived.
机译:这项工作致力于由马尔可夫链驱动的大规模离散时间非线性动力系统的接近最优控制。潜在的问题是最小化预期成本函数。我们的主要目标是降低底层系统的复杂性。为了达到这个目标,引入了奇摄动马尔可夫链下的离散时间控制模型。使用轻松的控件表示,我们的工作致力于找到接近最佳的控件。将每个不可归约类中的状态集合为一个状态会产生一个限制系统。将极限系统的近最优控制应用于原始系统,即可得出原始系统的近最优控制。

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