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Impulsive Effects and Stability Analysis on Memristive Neural Networks With Variable Delays

机译:变时滞忆阻神经网络的脉冲效应和稳定性分析

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摘要

In this brief, hybrid impulsive and adaptive feedback controllers are simultaneously exerted on a general delayed memristive neural network (MNN) model to formulate a novel impulsive controlled MNN (IMNN) model with variable delays. By means of Lyapunov-Razumikhin technique and other analytical ways, several new stability criteria of the proposed IMNN model are obtained. In addition, by choosing appropriate impulses and external inputs, the convergence speed of IMNN can be increased, which implies that its dynamic behaviors will be optimized. Finally, the effectiveness of the obtained results is illustrated by one numerical example.
机译:在这个简短的介绍中,混合式脉冲和自适应反馈控制器同时应用于一般的延迟忆阻神经网络(MNN)模型,以建立具有可变延迟的新型脉冲控制MNN(IMNN)模型。通过Lyapunov-Razumikhin技术和其他分析方法,获得了所提出的IMNN模型的一些新的稳定性准则。另外,通过选择适当的脉冲和外部输入,可以提高IMNN的收敛速度,这意味着将优化其动态行为。最后,通过一个数值例子说明了所得结果的有效性。

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