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On neighbourhood degree sequences of complex networks

机译:关于复杂网络的邻域度序列

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摘要

Network topology is a fundamental aspect of network science that allows us to gather insights into the complicated relational architectures of the world we inhabit. We provide a first specific study of neighbourhood degree sequences in complex networks. We consider how to explicitly characterise important physical concepts such as similarity, heterogeneity and organization in these sequences, as well as updating the notion of hierarchical complexity to reflect previously unnoticed organizational principles. We also point out that neighbourhood degree sequences are related to a powerful subtree kernel for unlabeled graph classification. We study these newly defined sequence properties in a comprehensive array of graph models and over 200 real-world networks. We find that these indices are neither highly correlated with each other nor with classical network indices. Importantly, the sequences of a wide variety of real world networks are found to have greater similarity and organisation than is expected for networks of their given degree distributions. Notably, while biological, social and technological networks all showed consistently large neighbourhood similarity and organisation, hierarchical complexity was not a consistent feature of real world networks. Neighbourhood degree sequences are an interesting tool for describing unique and important characteristics of complex networks.
机译:网络拓扑是网络科学的基本方面,它使我们能够收集对我们所居住世界的复杂关系体系结构的见解。我们提供了复杂网络中邻域度序列的第一个特定研究。我们考虑如何在这些序列中显式表征重要的物理概念,例如相似性,异质性和组织,以及更新层次结构复杂性的概念以反映以前未被注意的组织原理。我们还指出,邻域度序列与用于未标记图分类的强大子树内核有关。我们在全面的图形模型数组和200多个现实世界网络中研究这些新定义的序列属性。我们发现这些索引既不相互高度相关,也不与经典网络索引高度相关。重要的是,发现各种现实世界网络的序列比其给定度数分布的网络具有更大的相似性和组织性。值得注意的是,尽管生物学,社会和技术网络都表现出一致的大型邻里相似性和组织性,但层次复杂性并不是现实世界网络的一致特征。邻域度序列是用于描述复杂网络的独特和重要特征的有趣工具。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Keith M. Smith;

  • 作者单位
  • 年(卷),期 -1(9),-1
  • 年度 -1
  • 页码 8340
  • 总页数 11
  • 原文格式 PDF
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