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A New Criterion of Global Robust Stability for the Static Neural Network with Time-Delays

机译:具有时滞的静态神经网络的全局鲁棒稳定性的新判据

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The dynamics of the local field neural networks have been studied extensively, and many good results have been obtained. It should be pointed out that, the global robust stability for the static neural networks with time-delays received very little attention despite its practical importance. In this paper, by using the topological degree theory M-matrix theory and the linear differential inequality technique, a new criterion of global robuststability for static neural networks with time-delays is derived. An example is exploited to show the usefulness of the derived stability conditions.
机译:广泛研究了本地现场神经网络的动态,并获得了许多良好的结果。应该指出的是,尽管其实际重要性,但随着时间延迟的静态神经网络的全球稳定稳定性很少受到影响。本文通过使用拓扑学位理论和线性差分不等式技术,推导出具有时滞时滞的静态神经网络的全球鲁棒稳健性的新标准。利用示例以显示导出的稳定条件的有用性。

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