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Global Exponential Stability for Uncertain Delayed Neural Networks of Neutral Type With Mixed Time Delays

机译:具有混合时滞的不确定中立型时滞神经网络的全局指数稳定性

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摘要

The global exponential stability for a class of uncertain delayed neural networks (DNNs) of neutral type with mixed delays is investigated in this paper. Delay-dependent and delay-independent stability criteria are proposed to guarantee the robust stability and uniqueness of equilibrium point of DNNs via linear matrix inequality and Razumikhin-like approaches. Two classes of perturbations on weighting matrices are considered in this paper. Some numerical examples are illustrated to show the effectiveness of our results.
机译:研究了一类具有混合时滞的中立型不确定时滞神经网络的全局指数稳定性。提出了时滞相关和时滞独立稳定性准则,以通过线性矩阵不等式和类Razumikhin方法来保证DNN平衡点的鲁棒稳定性和唯一性。本文考虑了两类加权矩阵的摄动。举例说明了一些数值例子,以证明我们的结果的有效性。

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