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A New Framework for Centrality Measures in Multiplex Networks

2018/01/24 by Carlo Spatocco, Spatocco, Carlo, Giovanni Stilo +5
Computer Science · Physics and Astronomy · #FOS: Computer and information sciences #FOS: Physical sciences #Physics and Society (physics.soc-ph) #Social and Information Networks (cs.SI) #cs.SI #physics.soc-ph

paper · pdf · doi:10.48550/arxiv.1801.08026

15 pages

arxiv created 2018/02/07 · arxiv updated 2018/02/08

Abstract

The non-trivial structure of such complex systems makes the analysis of their collective behavior a challenge. The problem is even more difficult when the information is distributed across networks (e.g., communication networks in different media); in this case, it becomes impossible to have a complete, or even partial picture, if situations are analyzed separately within each network due to sparsity. A multiplex network is well-suited to model the complexity of this kind of systems by preserving the semantics associated with each network. Centrality measures are fundamental for the identification of key players, but existing approaches are typically designed to capture a predefined aspect of the system, ignoring or merging the semantics of the individual layers.

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