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Global Exponential Anti-synchronization of Coupled Memristive Chaotic Neural Networks with Time-Varying Delays

机译:时变时滞耦合忆阻混沌神经网络的全局指数反同步

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This paper investigates the problem of global exponential anti-synchronization of a class of memristive chaotic neural networks with time-varying delays. First, a memrsitive neural network is modeled. Then, considering the state-dependent properties of the memristor, a new fuzzy model employing parallel distributed compensation (PDC) provides a new way to analyze the complicated memristive neural networks with only two subsystems. And the controller is dependent on the output of the system in the case of packed circuits. An illustrative example is also presented to show the effectiveness of the results.
机译:本文研究了一类具有时变时滞的忆阻混沌神经网络的全局指数反同步问题。首先,对记忆神经网络进行建模。然后,考虑忆阻器的状态相关特性,采用并行分布补偿(PDC)的新模糊模型为分析仅具有两个子系统的复杂忆阻神经网络提供了一种新方法。在电路紧凑的情况下,控制器取决于系统的输出。还提供了一个说明性示例,以显示结果的有效性。

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