Adaptive neural control for a class of uncertain non-affine nonlinear switched systems

被引:0
|
作者
Seyyed Mostafa Tabatabaei
Mohammad Mehdi Arefi
机构
[1] Iran University of Science and Technology,Electrical Engineering Department
[2] Shiraz University,Department of Power and Control Engineering, School of Electrical and Computer Engineering
来源
Nonlinear Dynamics | 2016年 / 83卷
关键词
Adaptive neural network; RBF neural network; Non-affine; Nonlinear switched systems;
D O I
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中图分类号
学科分类号
摘要
This paper presents an indirect adaptive neural network control for a class of uncertain non-affine nonlinear switched systems with an unknown control direction. In this method, the unknown non-affine function is firstly converted into an affine-like form using the mean value theorem. Then, an RBF neural network is utilized to approximate the unknown functions. In addition, Nussbaum-gain technique is employed to deal with the issue of not having a priori knowledge about the gain sign. Furthermore, by adding a robustifying term to the control signal, the proposed approach can handle the approximation error in neural network approximation and external disturbance so that the system robustness can be improved. The proposed controller is designed based on Lyapunov stability theory to ensure the asymptotic stability of the closed-loop system. Finally two numerical simulations are given to show the effectiveness of the proposed scheme.
引用
收藏
页码:1773 / 1781
页数:8
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