A tensor-based framework for studying eigenvector multicentrality in multilayer networks
Author(s) -
Mincheng Wu,
Shibo He,
Yongtao Zhang,
Jiming Chen,
Youxian Sun,
YangYu Liu,
Junshan Zhang,
H. Vincent Poor
Publication year - 2019
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1801378116
Subject(s) - centrality , leverage (statistics) , eigenvalues and eigenvectors , tensor (intrinsic definition) , computer science , function (biology) , theoretical computer science , data mining , algorithm , artificial intelligence , mathematics , physics , pure mathematics , statistics , biology , evolutionary biology , quantum mechanics
Centrality is widely recognized as one of the most critical measures to provide insight into the structure and function of complex networks. While various centrality measures have been proposed for single-layer networks, a general framework for studying centrality in multilayer networks (i.e., multicentrality) is still lacking. In this study, a tensor-based framework is introduced to study eigenvector multicentrality, which enables the quantification of the impact of interlayer influence on multicentrality, providing a systematic way to describe how multicentrality propagates across different layers. This framework can leverage prior knowledge about the interplay among layers to better characterize multicentrality for varying scenarios. Two interesting cases are presented to illustrate how to model multilayer influence by choosing appropriate functions of interlayer influence and design algorithms to calculate eigenvector multicentrality. This framework is applied to analyze several empirical multilayer networks, and the results corroborate that it can quantify the influence among layers and multicentrality of nodes effectively.
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