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Asymptotic stability analysis of neural networks with successive time delay components

机译:具有连续时滞分量的神经网络的渐近稳定性分析

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摘要

In this paper the asymptotic stability of a class of time-delay neural networks is investigated. The neural network model under consideration includes multiple components which is more general than those with the single delay. By constructing a new Lyapunov functional and by using advanced techniques for achieving delay dependence, we derive a new asymptotic stability criterion for neural networks with multiple successive delay components. A numerical example is provided to show the merits of the proposed criterion.
机译:本文研究了一类时滞神经网络的渐近稳定性。正在考虑的神经网络模型包括多个组件,这些组件比具有单个延迟的组件更通用。通过构造新的Lyapunov函数并使用先进的技术来实现延迟依赖,我们为具有多个连续延迟分量的神经网络推导了新的渐近稳定性判据。提供了一个数值示例来说明提出的标准的优点。

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