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Global Exponential Stability of Recurrent Neural Networks with Infinite Time-Varying Delays and Reaction-Diffusion Terms

机译:具有无限时变延迟和反应扩散条款的经常性神经网络的全局指数稳定性

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The global exponential stability is discussed for a general class of recurrent neural networks with infinite time-varying delays and reaction-diffusion terms. Several new sufficient conditions are obtained to ensure global exponential stability of the equilibrium point of recurrent neural networks with infinite time-varying delays and reaction-diffusion terms. The results extend the earlier publications. In addition, an example is given to show the effectiveness of the obtained results.
机译:全球指数稳定性讨论了具有无限时变延迟和反应扩散术语的一般复发神经网络。获得了几种新的充分条件,以确保具有无限时变延迟和反应扩散术语的经常性神经网络平衡点的全球指数稳定性。结果延长了前面的出版物。另外,给出了一个例子来显示所得结果的有效性。

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