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一类具有动态不确定性的非线性系统的自适应神经跟踪控制

Adaptive Neural Tracking Control for a Class of Nonlinear Systems With Dynamic Uncertainties.

出版信息

IEEE Trans Cybern. 2017 Oct;47(10):3075-3087. doi: 10.1109/TCYB.2016.2607166. Epub 2016 Sep 22.

Abstract

This paper considers the problem of adaptive neural control of nonlower triangular nonlinear systems with unmodeled dynamics and dynamic disturbances. The design difficulties appeared in the unmodeled dynamics and nonlower triangular form are handled with a dynamic signal and a variable partition technique for the nonlinear functions of all state variables, respectively. It is shown that the proposed controller is able to ensure the semi-global boundedness of all signals of the resulting closed-loop system. Furthermore, the system output is ensured to converge to a small domain of the given trajectories. The main advantage about this research is that a neural networks-based tracking control method is developed for uncertain nonlinear systems with unmodeled dynamics and nonlower triangular form. Simulation results demonstrate the feasibility of the newly presented design techniques.

摘要

本文考虑了具有未建模动态和动态干扰的非下三角非线性系统的自适应神经控制问题。分别使用动态信号和变量分区技术处理未建模动态和非线性函数的非下三角形式带来的设计困难。结果表明,所提出的控制器能够确保闭环系统所有信号的半全局有界性。此外,系统输出被保证收敛到给定轨迹的小区域。这项研究的主要优点是为具有未建模动态和非下三角形式的不确定非线性系统开发了基于神经网络的跟踪控制方法。仿真结果验证了新提出的设计技术的可行性。

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