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HM-Modularity: A Harmonic Motif Modularity Approach for Multi-Layer Network Community Detection

机译:HM-模块化:多层网络社区检测的谐波主题模块化方法

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Multi-layer network community detection has drawn an increasing amount of attention recently. Despite success, the existing methods mainly focus on the lower-order connectivity structure at the level of individual nodes and edges. And the higher-order connectivity structure has been largely ignored, which contains better signature of community compared with edges. The main challenges in utilizing higher-order structure for multi-layer network community detection are that the most representative higher-order structure may vary from one layer to another and the connectivity structure formed by the same node subset may exhibit different higher-order connectivity patterns in different layers. To this end, this paper proposes a novel higher-order structure, termed harmonic motif, which is a dense subgraph having on average the largest statistical significance in each layer. Based on the harmonic motif, a primary layer is constructed by integrating higher-order structural information from all layers. Additionally, the higher-order structural information of each individual layer is taken as the auxiliary information. A coupling is established between the primary layer and each auxiliary layer. Accordingly, a harmonic motif modularity is designed to generate the community structure. Extensive experiments on eleven real-world multi-layer network datasets have been conducted to confirm the effectiveness of the proposed method.
机译:多层网络社区检测最近引起了越来越大的关注。尽管成功,现有方法主要关注各个节点和边缘水平的下阶连接结构。并且高阶连接结构已经很大程度上被忽略了,而与边缘相比,该群体包含更好的社区签名。利用多层网络界检测的高阶结构的主要挑战是最代表性的高阶结构可以从一层变化到另一层,并且由相同节点子集形成的连接结构可以表现出不同的高阶连接模式在不同的层。为此,本文提出了一种新颖的高阶结构,称为谐波基序,其是具有平均每层最大统计显着性的致密子图。基于谐波图案,通过将来自所有层的高阶结构信息集成到所有层来构建主层。另外,每个单独层的高阶结构信息被视为辅助信息。在主层和每个辅助层之间建立耦合。因此,谐波基模块化旨在产生社区结构。已经进行了11个现实世界多层网络数据集的广泛实验,以确认所提出的方法的有效性。

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