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Spectral Analysis of Backbone Networks Against Targeted Attacks

机译:骨干网络针对性攻击的频谱分析

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Network science has been a central focus to correctly model and study resilience characteristics of communication networks. There have been many metrics used to represent connectivity of graphs; however, they do not suffice to compare networks with different numbers of nodes and links. The normalized Laplacian spectra enables network scientists to analyze network structures beyond what traditional graph metrics lacks. In this paper, we study the normalized Laplacian spectra of five backbone networks against targeted attacks. The physical and logical level of four commercial and one research backbone provider networks is studied. The intelligent attacks are modeled based on important graph centrality metrics of betweenness, closeness, and degree. Our results indicate that spectra of eigenvalues converge to zero after attacks. Moreover, we also identify that while in some scenarios different centrality-based attack strategies yield identical eigenvalue distribution, in other scenarios different attacks yield different eigenvalue distributions.
机译:网络科学一直是正确建模和研究通信网络的弹性特性的重点。有许多度量标准可用来表示图形的连通性。但是,它们不足以比较具有不同数量的节点和链接的网络。归一化的拉普拉斯频谱使网络科学家能够分析传统图形指标所缺乏的网络结构。在本文中,我们研究了五种针对目标攻击的骨干网络的标准化Laplacian谱。研究了四个商业和一个研究骨干提供商网络的物理和逻辑级别。智能攻击是基于重要度之间,接近度和程度的图形中心性度量建模的。我们的结果表明,特征值谱在攻击后收敛到零。此外,我们还发现,虽然在某些情况下,不同的基于中心度的攻击策略会产生相同的特征值分布,但在其他情况下,不同的攻击会产生不同的特征值分布。

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