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首页> 外文期刊>Neural Networks and Learning Systems, IEEE Transactions on >Synchronization for Coupled Neural Networks With Interval Delay: A Novel Augmented Lyapunov–Krasovskii Functional Method
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Synchronization for Coupled Neural Networks With Interval Delay: A Novel Augmented Lyapunov–Krasovskii Functional Method

机译:间隔时滞耦合神经网络的同步:一种新型的增强Lyapunov–Krasovskii函数方法

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摘要

This paper is concerned with the synchronization problems for an array of neural networks with hybrid coupling and interval time-varying delay. First, a novel augmented Lyapunov–Krasovskii functional (LKF) method is proposed to develop delay-dependent synchronization criteria for the networks, which makes use of more relaxed conditions by employing the new type of augmented matrices with Kronecker product operation. The proposed method can handle a multitude of Kronecker product operations in the LKF and alleviates the requirements of the positive definiteness of some conditional matrices which are usually considered in the existing methods for complex networks. This leads to a significant improvement in the performance of the synchronization criteria, i.e., less conservative synchronization results can be obtained. Meanwhile, the case of fast time-varying delay can also be handled by the proposed method. Furthermore, based on the derived criteria, a robust synchronization criterion is obtained for the system with uncertainties both in coefficient and coupling matrix terms. Since an expression based on linear matrix inequality is used, the proposed criteria can be easily checked in practice. Finally, numerical examples are provided to show the effectiveness of the proposed method.
机译:本文关注具有混合耦合和间隔时变时滞的神经网络阵列的同步问题。首先,提出了一种新颖的增强Lyapunov–Krasovskii函数(LKF)方法,以开发网络的依赖于延迟的同步标准,该方法通过采用带有Kronecker乘积运算的新型增强矩阵来利用更为宽松的条件。所提出的方法可以处理LKF中的大量Kronecker乘积运算,并减轻了某些条件矩阵的正定性的要求,而这些条件矩阵通常是在现有方法中用于复杂网络的。这导致同步标准性能的显着改善,即,可以获得较少的保守同步结果。同时,该方法还可以处理时变快的情况。此外,基于导出的准则,针对系数和耦合矩阵项都不确定的系统,获得了鲁棒的同步准则。由于使用了基于线性矩阵不等式的表达式,因此在实践中可以轻松检查所提出的标准。最后,通过算例说明了该方法的有效性。

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