首页> 外文会议>International Symposium on Neural Networks(ISNN 2006) pt.1; 20060528-0601; Chengdu(CN) >Global Asymptotical Stability of Cohen-Grossberg Neural Networks with Time-Varying and Distributed Delays
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Global Asymptotical Stability of Cohen-Grossberg Neural Networks with Time-Varying and Distributed Delays

机译:具有时变和分布时滞的Cohen-Grossberg神经网络的全局渐近稳定性

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摘要

In this paper, we discuss delayed Cohen-Grossberg neural networks with time-varying and distributed delays and investigate their global asymptotical stability of the equilibrium point. The model proposed in this paper is universal. A set of sufficient conditions ensuring global convergence and globally exponential convergence for the Cohen-Grossberg neural networks with time-varying and distributed delays are given. Most of the existing models and global stability results for Cohen-Grossberg neural networks, Hopfield neural networks and cellular neural networks can be obtained from the theorems given in this paper.
机译:在本文中,我们讨论了具有时变和分布时滞的时滞Cohen-Grossberg神经网络,并研究了其平衡点的全局渐近稳定性。本文提出的模型是通用的。给出了一组确保具有时变和分布时滞的Cohen-Grossberg神经网络的全局收敛和全局指数收敛的充分条件。可以从本文给出的定理中获取有关Cohen-Grossberg神经网络,Hopfield神经网络和细胞神经网络的大多数现有模型和全局稳定性结果。

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