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Adaptive Dynamic Programming and Adaptive Optimal Output Regulation of Linear Systems

机译:线性系统的自适应动态规划和自适应最优输出调节

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This note studies the adaptive optimal output regulation problem for continuous-time linear systems, which aims to achieve asymptotic tracking and disturbance rejection by minimizing some predefined costs. Reinforcement learning and adaptive dynamic programming techniques are employed to compute an approximated optimal controller using input/partial-state data despite unknown system dynamics and unmeasurable disturbance. Rigorous stability analysis shows that the proposed controller exponentially stabilizes the closed-loop system and the output of the plant asymptotically tracks the given reference signal. Simulation results on a LCL coupled inverter-based distributed generation system demonstrate the effectiveness of the proposed approach.
机译:本文研究了连续时间线性系统的自适应最优输出调节问题,该问题旨在通过最小化一些预定义的成本来实现渐近跟踪和干扰抑制。尽管系统动力学未知且干扰无法测量,但仍采用强化学习和自适应动态编程技术来使用输入/部分状态数据来计算近似最优控制器。严格的稳定性分析表明,所提出的控制器以指数方式稳定了闭环系统,并且工厂的输出渐近跟踪给定的参考信号。基于LCL耦合逆变器的分布式发电系统的仿真结果证明了该方法的有效性。

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