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Overlapping communities detection based on spectral analysis of line graphs

机译:基于线图谱分析的重叠社区检测

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Community in networks are often overlapping where one vertex belongs to several clusters. Meanwhile, many networks show hierarchical structure such that community is recursively grouped into hierarchical organization. In order to obtain overlapping communities from a global hierarchy of vertices, a new algorithm (named SAoLG) is proposed to build the hierarchical organization along with detecting the overlap of community structure. SAoLG applies the spectral analysis into line graphs to unify the overlap and hierarchical structure of the communities. In order to avoid the limitation of absolute distance such as Euclidean distance, SAoLG employs Angular distance to compute the similarity between vertices. Furthermore, we make a micro-improvement partition density to evaluate the quality of community structure and use it to obtain the more reasonable and sensible community numbers. The proposed SAoLG algorithm achieves a balance between overlap and hierarchy by applying spectral analysis to edge community detection. The experimental results on one standard network and six real-world networks show that the SAoLG algorithm achieves higher modularity and reasonable community number values than those generated by Ahn's algorithm, the classical CPM and GN ones. (C) 2018 Elsevier B.V. All rights reserved.
机译:网络中的社区通常重叠,其中一个顶点属于几个集群。同时,许多网络示出了分层结构,使得社区被递归地分组成分级组织。为了从顶点的全局层次结构获取重叠的社区,提出了一种新的算法(名为Saolg)来构建分层组织以及检测社区结构的重叠。 Saolg将光谱分析应用于线图,以统一社区的重叠和层次结构。为了避免诸如欧几里德距离的绝对距离的限制,Saolg采用角距离来计算顶点之间的相似性。此外,我们进行了微观改善的分区密度,以评估社区结构的质量,并使用它来获得更合理和明智的群落数。所提出的Saolg算法通过对边缘社区检测应用频谱分析来实现重叠和层次结构之间的平衡。一个标准网络和六个真实网络的实验结果表明,SAOLG算法比AHN算法,古典CPM和GN ONE产生的群体更高的模块化和合理的社区数值。 (c)2018年elestvier b.v.保留所有权利。

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