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Output feedback neural adaptive control design for nonlinear time-delay systems

机译:非线性时滞系统的输出反馈神经自适应控制设计

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This paper addresses the adaptive output feedback control design problem for a class of nonlinear systems with unknown state time delays by combining the dynamic gain and neural network. A novel reduced-order dynamic gain observer is introduced to estimate the unmeasured system states. Radial basis function neural networks (RBF NNs) are used to approximate unknown functions. An adaptive NN output feedback controller is designed based on the backstepping technique. By arranging the proper Lyapunov-Krasovskii functional, we prove that all the signals in the closed-loop system are semi-globally uniformly ultimately bounded. Finally, a physical example and a numerical example are given to prove the effectiveness of the proposed control scheme.
机译:该文通过结合动态增益和神经网络,解决了一类状态时间延迟未知的非线性系统的自适应输出反馈控制设计问题。该文引入了一种新的降阶动态增益观测器来估计未测量的系统状态。径向基函数神经网络 (RBF NN) 用于近似未知函数。基于反步技术设计了一种自适应神经网络输出反馈控制器。通过安排适当的Lyapunov-Krasovskii泛函,我们证明了闭环系统中的所有信号最终都是半全局均匀有界的。最后,通过物理算例和数值算例验证了所提控制方案的有效性。

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