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Self-learning robust optimal control for continuous-time nonlinear systems with mismatched disturbances

机译:具有不匹配干扰的连续时间非线性系统的自学习鲁棒优化控制

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摘要

This paper presents a novel adaptive dynamic programming(ADP)-based self-learning robust optimal control scheme for input-affine continuous-time nonlinear systems with mismatched disturbances. First, the stabilizing feedback controller for original nonlinear systems is designed by modifying the optimal control law of the auxiliary system. It is also demonstrated that this feedback controller can optimize a specified value function. Then, within the framework of ADP, a single critic network is constructed to solve the Hamilton-Jacobi-Bellman equation associated with the auxiliary system optimal control law. To update the critic network weights, an indicator function and a concurrent learning technique are employed. By using the proposed update law for the critic network, the restrictive conditions including the initial admissible control and the persistence of excitation condition are relaxed. Moreover, the stability of the closed-loop auxiliary system is guaranteed in the sense that all the signals are uniformly ultimately bounded. Finally, the applicability of the developed control strategy is illustrated through simulations for an unstable nonlinear plant and a power system. (c) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新颖的自适应动态编程(ADP),用于基于具有错配干扰的输入仿射连续时间非线性系统的自动学习稳健最优控制方案。首先,通过修改辅助系统的最优控制定律,设计了原始非线性系统的稳定反馈控制器。还证明了该反馈控制器可以优化指定的值函数。然后,在ADP的框架内,构建一个批评网络以解决与辅助系统最佳控制法相关的汉密尔顿 - 雅各比 - 贝尔曼方程。为了更新批评网络权重,采用指示函数和并发学习技术。通过使用拟议的批评网络的更新法,放宽包括初始允许控制和励磁条件持续存在的限制条件。此外,闭环辅助系统的稳定性是以所有信号均匀最终限定的感觉保证。最后,通过对不稳定的非线性设备和电力系统的模拟来说明开发控制策略的适用性。 (c)2017 Elsevier Ltd.保留所有权利。

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