Parallel overlapping community discovery based on grey relational analysis

Qishan Zhang, Qiu Qirong, Kun Guo
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引用次数: 3

Abstract

Discovering social communities or social circles from social networks is interesting and important for many applications like business advertisement, social recommendation and collaborative office. In this paper, by integrating grey relational analysis with the label propagation algorithm and the parallel framework, a new parallel algorithm for detecting overlapping communities is proposed. The similarity of the vertices is measured by the grey relational degree and the parallel computation primitives are employed to propagate the labels in parallel. The experiments on both the artificial and realworld networks demonstrate that the new algorithm is effective in detecting overlapping social communities.
基于灰色关联分析的平行重叠社区发现
从社交网络中发现社交社区或社交圈对于商业广告、社交推荐和协同办公等许多应用来说都是非常有趣和重要的。本文将灰色关联分析与标签传播算法和并行框架相结合,提出了一种新的重叠社团检测并行算法。通过灰关联度度量顶点的相似性,并利用并行计算基元并行传播标签。在人工网络和现实网络上的实验表明,新算法在检测重叠的社会群体方面是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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