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Social Network Analysis in Scientometrics

机译:社会网络科学学分析

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In this paper we report on the results of our current attempt to enhance scientometric measurements by employing social network analysis and mining methods. We begin by recalling of our previous work on the collection of a rich data on the social network of scientific collaboration. Then, we proceed to the description of the enhancements to the dataset. Most importantly, we report on the three separate results obtained from the extended social network. The analysis of the triad closure consensus in the dataset reveals interesting patterns regarding the underlying nature of scientific collaboration. Even more evident are the results of the between ness centrality analysis, where a periodic pattern emerges both in co-authorship and co-participant networks. Finally, we conclude with the introduction of a complex model of scientific career development which uses conditional probability sequential patterns.
机译:在本文中,我们通过使用社会网络分析和采矿方法报告我们目前的尝试提高科学计量测量的结果。我们首先回顾我们以前关于收集关于社交网络的丰富数据的工作。然后,我们继续对数据集的增强的描述。最重要的是,我们报告了从扩展社交网络获得的三个单独结果。分析数据集中的三合会闭幕共识显示有关科学合作的潜在性质的有趣模式。更明显的是NESS中心分析之间的结果,其中周期性模式在共同作者和共同参与网络中出现。最后,我们通过引入一种复杂的科学职业发展模型,这些科学职业发展使用条件概率顺序模式。

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