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Dissipativity Analysis for Neural Networks With Time-Varying Delays via a Delay-Product-Type Lyapunov Functional Approach

机译:通过延迟 - 产品型Lyapunov功能方法与时变延迟的神经网络耗散分析

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This article is concerned with the problem of dissipativity and stability analysis for a class of neural networks (NNs) with time-varying delays. First, a new augmented Lyapunov-Krasovskii functional (LKF), including some delay-product-type terms, is proposed, in which the information on time-varying delay and system states is taken into full consideration. Second, by employing a generalized free-matrix-based inequality and its simplified version to estimate the derivative of the proposed LKF, some improved delay-dependent conditions are derived to ensure that the considered NNs are strictly (Q, S, R)-gamma-dissipative. Furthermore, the obtained results are applied to passivity and stability analysis of delayed NNs. Finally, two numerical examples and a real-world problem in the quadruple tank process are carried out to illustrate the effectiveness of the proposed method.
机译:本文涉及具有时变延迟的一类神经网络(NNS)的消散性和稳定性分析问题。首先,提出了一种新的增强Lyapunov-krasovskii功能(LKF),包括一些延迟产品类型术语,其中有关时变延迟和系统状态的信息将充分考虑。其次,通过采用广义自由矩阵的不等式及其简化版本来估计所提出的LKF的衍生物,推导出一些改进的延迟依赖条件,以确保所考虑的NNS是严格的(Q,S,R)-Gamma -耗散。此外,所得结果应用于延迟NNS的被动和稳定性分析。最后,执行了两种数值例子和四重罐过程中的实际问题,以说明所提出的方法的有效性。

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