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Global Exponential Stability of Reaction-Diffusion Delayed BAM Neural Networks with Dirichlet Boundary Conditions

机译:Dirichlet边界条件的反应扩散时滞BAM神经网络的全局指数稳定性

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In this paper, the global exponential stability for a class of reaction-diffusion delayed bidirectional associate memory (BAM) neural networks with Dirichlet boundary conditions is addressed by using the method of variation parameter and inequality technique, the delay-independent sufficient conditions to guarantee the uniqueness and global exponential stability of the equilibrium point of such networks are established. Finally, an example is given to show the effectiveness of the obtained result.
机译:本文采用变参数和不等式方法,研究了一类具有Dirichlet边界条件的反应扩散时滞双向联想记忆(BAM)神经网络的全局指数稳定性,该时滞无关的充分条件可以保证建立了此类网络平衡点的唯一性和全局指数稳定性。最后,通过一个例子说明了所得结果的有效性。

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