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Extracting information from multiplex networks

机译:从多路复用网络中提取信息

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摘要

Multiplex networks are generalized network structures that are able to describe networks in which the same set of nodes are connected by links that have different connotations. Multiplex networks are ubiquitous since they describe social, financial, engineering, and biological networks as well. Extending our ability to analyze complex networks to multiplex network structures increases greatly the level of information that is possible to extract from big data. For these reasons, characterizing the centrality of nodes in multiplex networks and finding new ways to solve challenging inference problems defined on multiplex networks are fundamental questions of network science. In this paper, we discuss the relevance of the Multiplex PageRank algorithm for measuring the centrality of nodes in multilayer networks and we characterize the utility of the recently introduced indicator function (Theta) over tilde (S) for describing their mesoscale organization and community structure. As working examples for studying these measures, we consider three multiplex network datasets coming for social science. Published by AIP Publishing.
机译:多路复用网络是能够描述通过具有不同内涵的链接连接的相同节点集的网络的广义网络结构。由于它们描述了社会,财务,工程和生物网络,因此多路复用网络普遍存在。扩展我们分析复合网络到多路复用网络结构的能力增加了从大数据中提取的信息水平。出于这些原因,表征了多路复用网络中的节点的中心,并找到了解决在多路复用网络上定义的具有挑战性推断问题的新方法是网络科学的基本问题。在本文中,我们讨论了多路复用PageRank算法测量多层网络中节点中心的相关性,并且我们将最近引入的指标功能(THETA)的实用程序描述为描述其Mescle组织和社区结构的TILDE。作为研究这些措施的工作示例,我们考虑了用于社会科学的三个多路复用网络数据集。通过AIP发布发布。

著录项

  • 来源
    《Chaos》 |2016年第6期|共11页
  • 作者单位

    Queen Mary Univ London Sch Math Sci Mile End Rd London E1 4NS England;

    Queen Mary Univ London Sch Math Sci Mile End Rd London E1 4NS England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自然科学总论;
  • 关键词

  • 入库时间 2022-08-19 23:30:36

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