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首页> 外文期刊>Cybernetics, IEEE Transactions on >Discrete-Time Optimal Control via Local Policy Iteration Adaptive Dynamic Programming
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Discrete-Time Optimal Control via Local Policy Iteration Adaptive Dynamic Programming

机译:通过局部策略迭代自适应动态规划的离散时间最优控制

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摘要

In this paper, a discrete-time optimal control scheme is developed via a novel local policy iteration adaptive dynamic programming algorithm. In the discrete-time local policy iteration algorithm, the iterative value function and iterative control law can be updated in a subset of the state space, where the computational burden is relaxed compared with the traditional policy iteration algorithm. Convergence properties of the local policy iteration algorithm are presented to show that the iterative value function is monotonically nonincreasing and converges to the optimum under some mild conditions. The admissibility of the iterative control law is proven, which shows that the control system can be stabilized under any of the iterative control laws, even if the iterative control law is updated in a subset of the state space. Finally, two simulation examples are given to illustrate the performance of the developed method.
机译:本文通过一种新颖的局部策略迭代自适应动态规划算法,提出了一种离散时间最优控制方案。在离散时间局部策略迭代算法中,可以在状态空间的子集中更新迭代值函数和迭代控制律,与传统策略迭代算法相比,状态空间的子集可以减轻计算负担。给出了局部策略迭代算法的收敛性,证明了迭代值函数单调递增,并且在某些温和条件下收敛到最优值。证明了迭代控制律的可容许性,这表明即使在状态空间的子集中更新了迭代控制律,控制系统也可以在任何迭代控制律下保持稳定。最后,给出了两个仿真实例来说明该方法的性能。

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