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Visualization, analysis and structural pattern infusion of DBLP co-authorship network using Gephi

机译:使用Gephi的DBLP合著网络的可视化,分析和结构模式注入

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DBLP (Digital Bibliography & Library Project) has the huge collection (around 3.4 million) of journal articles with its meta data, papers published in various national and international conferences, and other number of online publications in the field of computer science. Research data on DBLP increases enormously which arises many research problems in the domain of bibliography data network analysis such as citation index and co-authorship etc. For this purpose, many researchers' work is available on Data visualization, Data Mining, Data Analysis and prediction of the same. Here in this research paper, we are showing results of visualizing and analyzing DBLP Co-authorship network with the help of Gephi tool. We use DBLP dataset which is an undirected graph and contains 17280 nodes and 58539 edges. In this Graph nodes are taken as author and edges connect two nodes/authors according to their association in considered research papers' dataset. There will be more than one edge in between two nodes if both the researcher co-authored more than one paper. Attention has been devoted towards statistic based analysis with some varying measuring factors such as connected nodes, clustering coefficient, page rank, Average path length and Graph density. We apply Force Atlas2 for community generation and thereafter graph represent co-authorship network communities. We discuss and detail about collect, analyze and visualize co-authorship data which is further used for understanding the academic collaboration and finding the research communities for specific knowledge domain. Even we discuss about analysis of individual researcher and their community in the past through repetitive co-published work.
机译:DBLP(数字书目和图书馆项目)以其元数据,在各种国内外会议上发表的论文以及计算机科学领域的其他许多在线出版物而拥有大量的期刊文章(约340万)。 DBLP上的研究数据激增,这引起了书目数据网络分析领域的许多研究问题,例如引文索引和合著等。为此,许多研究人员的工作可用于数据可视化,数据挖掘,数据分析和预测一样的。在本研究报告的此处,我们将展示在Gephi工具的帮助下可视化和分析DBLP合著者网络的结果。我们使用DBLP数据集,它是一个无向图,包含17280个节点和58539个边。在该图中,将节点视为作者,并根据考虑的研究论文数据集中的关联,边将两个节点/作者联系起来。如果两位研究人员共同撰写了多篇论文,那么在两个节点之间将存在一个以上的边缘。人们已经将注意力集中在基于统计的分析上,其中使用了一些变化的测量因素,例如连接的节点,聚类系数,页面等级,平均路径长度和图形密度。我们将Force Atlas2应用到社区生成中,然后图形代表共同作者网络社区。我们讨论并详细介绍了收集,分析和可视化合著者数据,这些数据进一步用于理解学术合作和查找特定知识领域的研究社区。甚至我们也通过重复的共同发表的工作来讨论过去对个人研究人员及其社区的分析。

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