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An error passivation approach to filtering for switched neural networks with noise disturbance

机译:一种误差钝化的带噪声干扰的开关神经网络滤波

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摘要

In this paper, an error passivation approach is used to derive a new passive and exponential filter for switched Hopfield neural networks with time-delay and noise disturbance. Based on Lyapunov-Krasovskii stability theory, Jensen's inequality, and linear matrix inequality (LMI), a new sufficient criterion is established such that the filtering error system is exponentially stable and passive from the noise disturbance to the output error. It is shown that the unknown gain matrix of the proposed switched passive filter can be determined by solving a set of LMIs, which can be easily facilitated by using some standard numerical packages. An illustrative example is given to demonstrate the effectiveness of the proposed switched passive filter.
机译:本文采用误差钝化的方法来推导具有时滞和噪声干扰的切换Hopfield神经网络的新型无源和指数滤波器。基于Lyapunov-Krasovskii稳定性理论,Jensen不等式和线性矩阵不等式(LMI),建立了一个新的充分判据,使得滤波误差系统呈指数稳定,并且从噪声干扰到输出误差都是被动的。结果表明,所提出的开关式无源滤波器的未知增益矩阵可以通过求解一组LMI来确定,这可以通过使用一些标准数值包轻松实现。给出了一个说明性示例,以证明所提出的开关式无源滤波器的有效性。

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