离散延迟Hopfield神经网络的稳定性条件

Runnian Ma, Peng Chu, Shengrui Zhang
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引用次数: 5

摘要

神经网络的稳定性是最基本、最重要的问题,也是神经网络应用的基础。本文主要通过构造Lyapunov函数和考虑不等式技术来研究离散延迟Hopfield神经网络的稳定性。给出了离散延迟Hopfield神经网络收敛于4周期极限环的充分条件。同时,得到了离散时滞Hopfield神经网络既不具有稳定状态又不具有2周期极限环的一些条件。本文所得结果扩展和改进了文献中关于离散Hopfield神经网络稳定性和离散延迟Hopfield神经网络稳定性的一些已建立的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stability Conditions for Discrete Delayed Hopfield Neural Networks
The stability of neural networks is not only the most basic and important problem but also the foundation of some neural network's applications. In this paper, the stability of discrete delayed Hopfield neural networks is mainly investigated by constructing Lyapunov function and taking some inequality techniques into account. The sufficient conditions for discrete delayed Hopfield neural networks converging towards a limit cycle with 4-period are given. Also, some conditions for discrete delayed Hopfield neural networks neither having a stable state nor a limit cycle with 2-period are obtained. The obtained results here extend and improve some previously established results on the stability of discrete Hopfield neural network and the stability of discrete delayed Hopfield neural network in the literature.
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