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Generalized passivity of coupled neural networks with directed and undirected topologies

机译:具有有向和无向拓扑的耦合神经网络的广义无源性

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摘要

The generalized passivity is discussed for coupled neural networks (CNNs) with directed and undirected topologies, respectively. Firstly, some generalized passivity definitions are proposed for general systems, in which output and input vectors may have different dimensions. By exploiting concepts of passivity and matrix theory, several criteria are established to guarantee the generalized passivity of CNNs with directed and undirected topologies. However, in many circumstances, CNNs with known coupling weights is not passive. Therefore, some control schemes for updating the coupling weights are also presented. By using these adaptive control schemes, several criteria for ensuring network passivity are derived. In addition, two simulation examples are presented to show the correctness of proposed passivity criteria. (C) 2018 Elsevier B.V. All rights reserved.
机译:分别针对有向和无向拓扑的耦合神经网络(CNN)讨论了广义无源性。首先,针对通用系统提出了一些通用的无源定义,其中输出和输入矢量可能具有不同的维数。通过利用无源性和矩阵理论的概念,建立了几个标准来保证具有定向和无定向拓扑的CNN的广义无源性。但是,在许多情况下,具有已知耦合权重的CNN并不是被动的。因此,还提出了一些用于更新耦合权重的控制方案。通过使用这些自适应控制方案,得出了确保网络无源性的若干标准。此外,还给出了两个仿真示例,以说明所提出的被动性准则的正确性。 (C)2018 Elsevier B.V.保留所有权利。

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