不确定纯反馈非线性系统的鲁棒自适应神经控制

Gang Sun, Dan Wang, Zhouhua Peng, Hao Wang, Weiyao Lan, Mingxin Wang
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引用次数: 27

摘要

针对不确定纯反馈非线性系统,提出了一种鲁棒自适应神经控制设计方法。在控制设计过程中,只使用一个神经网络来逼近系统的集总未知部分,完全消除了传统方法存在的复杂性增长问题。稳定性分析结果表明,所提方案能够保证闭环系统信号的一致最终有界性,并通过合理选择控制参数来保证控制性能。仿真实例验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust adaptive neural control of uncertain pure-feedback nonlinear systems
A robust adaptive neural control design approach is presented for uncertain pure-feedback nonlinear systems. In the control design process, only one neural network is used to approximate the lumped unknown part of the systems, and the problem of complexity growing existing in conventional methods can be eliminated completely. The result of stability analysis shows that the proposed scheme can guarantee the uniform ultimate boundedness of the closed-loop system signals, and the control performance can be guaranteed by an appropriate choice of the control parameters. A simulation example is given to demonstrate the effectiveness of the proposed approach.
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