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OverCite: Finding overlapping communities in citation network

机译:OverCite:在引文网络中查找重叠的社区

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Citation analysis is a popular area of research, which has been usually used to rank the authors and the publication venues of research papers. With huge number of publications every year, it has become difficult for the users to find relevant publication materials. One simple solution to this problem is to detect communities from the citation network and recommend papers based on the common membership in communities. But, in today's research scenario, many researchers' fields of interest spread into multiple research directions resulting in an increasing number of interdisciplinary publications. Therefore, it is necessary to detect overlapping communities for relevant recommendation. In this paper, we represent publication information as a tripartite ‘Publication Hypergraph’ consisting of authors, papers and publication venues (conferences/journals) in three partitions. We then propose an algorithm called ‘OverCite’, which can detect overlapping communities of authors, papers and venues simultaneously using the publication hypergraph and the citation network information. We compare OverCite with two existing overlapping community detection algorithms, Clique Percolation Method (CPM) and iLCD, applied on citation network. The experiments on a large real-world citation dataset show that OverCite outperforms other two algorithms. We also present a simple paper search and recommendation system. Based on the relevance judgements of the users, we further prove the effectiveness of OverCite over other two algorithms.
机译:引文分析是一个受欢迎的研究领域,通常被用来对研究论文的作者和出版地点进行排名。每年都有大量的出版物,用户很难找到相关的出版物材料。解决此问题的一种简单方法是从引文网络中检测社区,并根据社区中的常见成员身份推荐论文。但是,在当今的研究场景中,许多研究人员的兴趣领域扩展到多个研究方向,从而导致交叉学科出版物的数量增加。因此,有必要检测重叠的社区以进行相关推荐。在本文中,我们将出版物信息表示为一个三方“出版物超图”,由三部分组成的作者,论文和出版物场所(会议/期刊)。然后,我们提出一种称为“ OverCite”的算法,该算法可以使用出版物超图和引文网络信息同时检测作者,论文和场所的重叠社区。我们将OverCite与引用网络上现有的两个重叠的社区检测算法Clique Percolation Method(CPM)和iLCD进行了比较。在大型现实引用数据集上进行的实验表明,OverCite优于其他两种算法。我们还提出了一个简单的论文搜索和推荐系统。根据用户的相关判断,我们进一步证明了OverCite相对于其他两种算法的有效性。

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