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Detecting Hierarchical Structure of Community Members by Link Pattern Expansion Method

机译:用链接模式扩展法检测社区成员的层次结构

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Community structure is an important property of complex networks, which is generally described as densely connected nodes and similar patterns of links. Hierarchy is a common property of networks. Different members have different belonging coefficients to the community, e.g. core members and boundary members, who are at different levels in the hierarchy of community. In this paper, a novel structure is presented, called hierarchical structure of members (HSM), which shows the relationships among members and multi-resolution of the community. A hierarchical link-pattern expansion method is proposed to detect HSM. First, we use the most similar link patterns to detect the seed communities which include both clique structures and star structures. Next, we define the influence between members to expand the community hierarchically. The experiment explores the hierarchical structure of members and the comparison with competitive algorithms on real-world networks demonstrates our method has stronger ability to detect communities.
机译:社区结构是复杂网络的重要属性,通常被描述为密集连接的节点和相似的链接模式。层次结构是网络的共同属性。不同的成员对社区的归属系数不同,例如核心成员和边界成员,他们位于社区层次结构中的不同级别。在本文中,提出了一种新颖的结构,称为成员的层次结构(HSM),它显示了成员之间的关系和社区的多分辨率。提出了一种分层的链接模式扩展方法来检测HSM。首先,我们使用最相似的链接模式来检测包括群落结构和星形结构的种子群落。接下来,我们定义成员之间的影响以扩展社区。实验探索了成员的层次结构,并与现实网络中的竞争算法进行了比较,证明了我们的方法具有更强的检测社区能力。

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