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具有多个时滞的中立型 Cohen-Grossberg 神经网络的全局稳定性的新准则。

New criteria for global stability of neutral-type Cohen-Grossberg neural networks with multiple delays.

机构信息

Department of Mathematics, Faculty of Science, Istanbul University, Vezneciler, Istanbul, Turkey.

出版信息

Neural Netw. 2020 May;125:330-337. doi: 10.1016/j.neunet.2020.02.020. Epub 2020 Mar 7.

Abstract

The significant contribution of this paper is the addressing the stability issue of neutral-type Cohen-Grossberg neural networks possessing multiple time delays in the states of the neurons and multiple neutral delays in time derivative of states of the neurons. By making the use of a novel and enhanced Lyapunov functional, some new sufficient stability criteria are presented for this model of neutral-type neural systems. The obtained stability conditions are completely dependent of the parameters of the neural system and independent of time delays and neutral delays. A constructive numerical example is presented for the sake of proving the key advantages of the proposed stability results over the previously reported corresponding stability criteria for Cohen-Grossberg neural networks of neutral type. Since, stability analysis of Cohen-Grossberg neural networks involving multiple time delays and multiple neutral delays is a difficult problem to overcome, the investigations of the stability conditions of the neutral-type the stability analysis of this class of neural network models have not been given much attention. Therefore, the stability criteria derived in this work can be evaluated as a valuable contribution to the stability analysis of neutral-type Cohen-Grossberg neural systems involving multiple delays.

摘要

本文的重要贡献在于解决了具有神经元状态多个时滞和神经元状态时滞导数多个中立时滞的中立型 Cohen-Grossberg 神经网络的稳定性问题。通过使用一种新颖而增强的 Lyapunov 函数,为该中立型神经网络系统模型提出了一些新的充分稳定性准则。所得到的稳定性条件完全取决于神经网络的参数,与时滞和中立时滞无关。为了证明所提出的稳定性结果相对于以前报道的中立型 Cohen-Grossberg 神经网络的相应稳定性准则的关键优势,提出了一个建设性的数值实例。由于涉及多个时滞和多个中立时滞的 Cohen-Grossberg 神经网络的稳定性分析是一个难以克服的问题,因此,对这类神经网络模型的中立型稳定性分析的稳定性条件的研究并没有得到太多关注。因此,本工作中得出的稳定性准则可以被评估为对涉及多个时滞的中立型 Cohen-Grossberg 神经网络的稳定性分析的有价值的贡献。

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