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Synchronization of generalized reaction-diffusion neural networks with time-varying delays based on general integral inequalities and sampled-data control approach

机译:基于一般积分不等式和采样数据控制方法的时变时滞广义反应扩散神经网络的同步

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摘要

This paper explores the problem of synchronization of a class of generalized reaction-diffusion neural networks with mixed time-varying delays. The mixed time-varying delays under consideration comprise of both discrete and distributed delays. Due to the development and merits of digital controllers, sampled-data control is a natural choice to establish synchronization in continuous-time systems. Using a newly introduced integral inequality, less conservative synchronization criteria that assure the global asymptotic synchronization of the considered generalized reaction-diffusion neural network and mixed delays are established in terms of linear matrix inequalities (LMIs). The obtained easy-to-test LMI-based synchronization criteria depends on the delay bounds in addition to the reaction-diffusion terms, which is more practicable. Upon solving these LMIs by using Matlab LMI control toolbox, a desired sampled-data controller gain can be acuqired without any difficulty. Finally, numerical examples are exploited to express the validity of the derived LMI-based synchronization criteria.
机译:本文探讨了一类具有混合时变时滞的广义反应扩散神经网络的同步问题。考虑中的混合时变延迟包括离散延迟和分布式延迟。由于数字控制器的发展和优点,采样数据控制是在连续时间系统中建立同步的自然选择。使用新引入的积分不等式,根据线性矩阵不等式(LMI)建立了较保守的同步准则,该准则可确保考虑的广义反应扩散神经网络的全局渐近同步和混合延迟。获得的易于测试的基于LMI的同步标准除了反应扩散项外还取决于延迟范围,这更可行。通过使用Matlab LMI控制工具箱解决这些LMI时,可以轻松获得所需的采样数据控制器增益。最后,利用数字示例来表达所得出的基于LMI的同步标准的有效性。

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