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Stability and synchronization for impulsive Markovian switching CVNNs: matrix measure approach

机译:脉冲性市场开关CVNNS的稳定性和同步:矩阵测量方法

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This paper devotes to the global exponential stability and synchronization problem for impulsive Markovian switching complex-valued neural networks (CVNNs) with time-varying delays. Based on the matrix measure approach and the impulsive differential inequality, some sufficient conditions are firstly derived to guarantee the impulsive network to be exponentially stable, where the exponential convergence rate is explicitly estimated. After that, the synchronization problem is investigated for the coupled impulsive complex-valued networks, and the obtained criteria are easy to be verified and implemented in practice. Finally, two examples are presented to illustrate effectiveness of the proposed theoretical results. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文致力于具有时变延迟的冲动马尔维亚切换复合性神经网络(CVNNS)的全球指数稳定性和同步问题。基于矩阵测量方法和脉冲差异不等式,首先导出了一些充分的条件,以保证脉冲网络是指数稳定的,其中明确地估计指数收敛速率。之后,针对耦合的脉冲复合网络研究了同步问题,并且在实践中易于验证和实现所获得的标准。最后,提出了两个示例以说明所提出的理论结果的有效性。 (c)2019 Elsevier B.v.保留所有权利。

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