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Complete periodic adaptive antisynchronization of memristor-based neural networks with mixed time-varying delays

机译:具有混合时变时滞的忆阻器神经网络的完整周期自适应反同步

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This paper is concerned with the complete periodic antisynchronization issue of memristor-based neural networks with mixed time-varying delays. Under the framework of Filippov solutions of the differential equations with discontinuous right-hand side, based on Mawhin-like coincidence theorem in set-valued analysis theory, the proof of the existence of periodic solution is presented. By applying the Lyapunov-Krasovskii functional approach, adaptive controller is designed and unknown control parameters of the slave system are determined by adaptive laws, and the complete periodic adaptive antisynchronization condition is addressed to ensure the slave system global antisynchronization with the master system. An illustrative example is given to demonstrate the effectiveness of the obtained results.
机译:本文涉及具有混合时变时滞的基于忆阻器的神经网络的完整周期反同步问题。在具有不连续右手边的微分方程的Filippov解的框架下,基于集值分析理论中类似Mawhin的重合定理,给出了周期解存在性的证明。通过应用Lyapunov-Krasovskii泛函方法,设计了自适应控制器,并根据自适应律确定了从系统的未知控制参数,并提出了完整的周期自适应反同步条件,以确保从系统与主系统全局反同步。给出一个说明性的例子来证明所获得结果的有效性。

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