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Adaptive output feedback control for nonlinear time-delay systems using neural network
作者姓名:Weisheng CHEN  Junmin LI
作者单位:Department of Applied Mathematics, Xidian University, Xi’an Shaanxi 710071, China
基金项目:This work was supported by the National Natural Science Foundation of China (No. 60374015) and Shaanxi Province Nature Science Foundation (No. 2003A 15).
摘    要:This paper extends the adaptive neural network (NN) control approaches to a class of unknown output feedback nonlinear time-delay systems. An adaptive output feedback NN tracking controller is designed by backstepping technique. NNs are used to approximate unknown functions dependent on time delay, Delay-dependent filters are introduced for state estimation. The domination method is used to deal with the smooth time-delay basis functions. The adaptive bounding technique is employed to estimate the upper bound of the NN approximation errors. Based on Lyapunov- Krasovskii functional, the semi-global uniform ultimate boundedness of all the signals in the closed-loop system is proved, The feasibility is investigated by two illustrative simulation examples.

关 键 词:时间延迟  非线性系统  人工神经网络  输出反馈  适应控制
收稿时间:9/9/2005 12:00:00 AM
修稿时间:4/4/2006 12:00:00 AM

Adaptive output feedback control for nonlinear time-delay systems using neural network
Weisheng CHEN,Junmin LI.Adaptive output feedback control for nonlinear time-delay systems using neural network[J].Journal of Control Theory and Applications,2006,4(4):313-320.
Authors:Weisheng CHEN  Junmin LI
Affiliation:Department of Applied Mathematics, Xidian University, Xi'an Shaanxi 710071, China
Abstract:This paper extends the adaptive neural network (NN) control approaches to a class of unknown output feedback nonlinear time-delay systems. An adaptive output feedback NN tracking controller is designed by backstep- ping technique. NNs are used to approximate unknown functions dependent on time delay. Delay-dependent filters are introduced for state estimation. The domination method is used to deal with the smooth time-delay basis functions. The adaptive bounding technique is employed to estimate the upper bound of the NN approximation errors. Based on Lyapunov- Krasovskii functional, the semi-global uniform ultimate boundedness of all the signals in the closed-loop system is proved. The feasibility is investigated by two illustrative simulation examples.
Keywords:Time delay  Nonlinear system  Neural network  Backstepping  Output feedback  Adaptive control
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