Pairwise Co-betweenness for Several Types of Network

J. Networks Pub Date : 2015-03-03 DOI:10.4304/jnw.10.2.91-98
Liang Li, Gaoxia Wang, Man Yu
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引用次数: 1

Abstract

Vertex betweenness centrality is essential in the analysis of social and information networks, and it quantify vertex importance in terms of its quantity of information along geodesic paths in network. Edge betweenness is similar to the vertex betweenness. Co-betweenness centrality is a natural developed notion to extend vertex betweenness centrality to sets of vertices, and pairwise co-betweenness is a special case of co-betweenness. In this paper, we analysis the pairwise co-betweenness of WS network model with the different reconnection probability which including rule, smallworld and random network. The pairwise co-betweenness value is represented by several different ways, and it shows some regularity with changing reconnection probability of each edge in WS network model. Meanwhile, for communitystructure network, we obtain vertex-induced subgraph with the highest betweenness vertices, and the edge-induced subgraph with the highest pairwise co-betweenness edges. We demonstrate that the edge of cross-groups is consistent with the edges with top incidental pairwise co-betweenness. Finally, further illustration to the interaction of pairwise co-betweenness and network structure is provided by a practical social network.
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几种类型网络的两两共间性
顶点中间性中心性是社会和信息网络分析的重要组成部分,它根据顶点在网络测地线路径上的信息量来量化顶点的重要性。边的中间度类似于顶点的中间度。协间中心性是将顶点间中心性扩展到顶点集的一种自然发展的概念,而成对共间性是协间性的一种特殊情况。本文分析了具有不同重连概率的WS网络模型的两两共通性,其中包括规则网络、小世界网络和随机网络。在WS网络模型中,两两共间值有几种不同的表示方式,且随各边重连概率的变化呈现出一定的规律性。同时,对于群落结构网络,我们得到了顶点间度最高的顶点诱导子图和成对共间度最高的边诱导子图。我们证明了交叉群的边与上附带两两共间的边是一致的。最后,以一个实际的社会网络为例,进一步说明了两两共间性与网络结构的相互作用。
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