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Observer design for neutral-type neural networks with discrete and distributed time-varying delays

机译:具有离散和分布时变时滞的中立型神经网络的观测器设计

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摘要

This paper is concerned with the problem of state estimation for a class of neural networks with discrete and distributed interval time-varying delays. We propose a new approach of nonlinear estimator design for the class of neutral-type neural networks. By constructing a newly augmented Lyapunov-Krasovskii functional, we establish sufficient conditions to guarantee the estimation error dynamics to be globally exponentially stable. The obtained results are formulated in terms of linear matrix inequalities (LMIs), which can be easily verified by the MATLAB LMI control toolbox. Then, the desired estimators gain matrix is characterized in terms of the solution to these LMIs. Three numerical examples are given to show the effectiveness of the proposed design method.
机译:本文涉及一类具有离散和分布间隔时变时滞的神经网络的状态估计问题。我们为中性型神经网络提出了一种非线性估计器设计的新方法。通过构造一个新的增强的Lyapunov-Krasovskii泛函,我们建立了充分的条件来保证估计误差动态在全局上是指数稳定的。获得的结果用线性矩阵不等式(LMI)表示,可以通过MATLAB LMI控制工具箱轻松验证。然后,根据这些LMI的解来表征所需的估计器增益矩阵。给出了三个数值例子,说明了该设计方法的有效性。

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