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多重网络的统计力学:熵与重叠

Statistical mechanics of multiplex networks: entropy and overlap.

作者信息

Bianconi Ginestra

机构信息

School of Mathematical Sciences, Queen Mary University of London, London E1 4NS, United Kingdom.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Jun;87(6):062806. doi: 10.1103/PhysRevE.87.062806. Epub 2013 Jun 14.

DOI:10.1103/PhysRevE.87.062806
PMID:23848728
Abstract

There is growing interest in multiplex networks where individual nodes take part in several layers of networks simultaneously. This is the case, for example, in social networks where each individual node has different kinds of social ties or transportation systems where each location is connected to another location by different types of transport. Many of these multiplexes are characterized by a significant overlap of the links in different layers. In this paper we introduce a statistical mechanics framework to describe multiplex ensembles. A multiplex is a system formed by N nodes and M layers of interactions where each node belongs to the M layers at the same time. Each layer α is formed by a network G^{α}. Here we introduce the concept of correlated multiplex ensembles in which the existence of a link in one layer is correlated with the existence of a link in another layer. This implies that a typical multiplex of the ensemble can have a significant overlap of the links in the different layers. Moreover, we characterize microcanonical and canonical multiplex ensembles satisfying respectively hard and soft constraints and we discuss how to construct multiplexes in these ensembles. Finally, we provide the expression for the entropy of these ensembles that can be useful to address different inference problems involving multiplexes.

摘要

人们对多重网络的兴趣与日俱增,在多重网络中,单个节点同时参与多层网络。例如,在社交网络中,每个节点都有不同类型的社会关系;在交通系统中,每个地点都通过不同类型的交通方式与其他地点相连,情况就是如此。许多这样的多重网络的特点是不同层中的链路有显著重叠。在本文中,我们引入一个统计力学框架来描述多重网络系综。一个多重网络是由N个节点和M层相互作用构成的系统,其中每个节点同时属于这M层。每一层α由一个网络G^α构成。这里我们引入相关多重网络系综的概念,其中一层中链路的存在与另一层中链路的存在相关。这意味着该系综中的典型多重网络在不同层中可能有显著的链路重叠。此外,我们刻画了分别满足硬约束和软约束的微正则和正则多重网络系综,并讨论了如何在这些系综中构建多重网络。最后,我们给出了这些系综熵的表达式,这对于解决涉及多重网络的不同推理问题可能是有用的。

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