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Resolving Author Name Homonymy to Improve Resolution of Structures in Co-author Networks

机译:解决作者名称同名以改善共同作者网络中结构的解决方案

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We investigate how author name homonymy distorts clustered large-scale co-author networks, and present a simple, effective, scalable and generalizable algorithm to ameliorate such distortions. We evaluate the performance of the algorithm to improve the resolution of mesoscopic network structures, that is those meso-level structures of a network resulting from groupings of nodes and their interlinking. To this end, we establish the ground truth for a sample of author names that is statistically representative of different types of nodes in the co-author network, distinguished by their role for the connectivity of the network. We finally observe that this distinction of node roles based on the mesoscopic structure of the network, in combination with a quantification of the commonality of last names, suggests a new approach to assess network distortion by homonymy and to analyze the reduction of distortion in the network after disambiguation, without requiring ground truth sampling.
机译:我们调查Author Name Hommonymy扭曲集群的大型共同作者网络的方式,并提出了一种简单,有效,可扩展且概括的算法来改善这种扭曲。我们评估算法的性能,提高介绍网络结构的分辨率,即由节点分组和它们的交互导致的网络的那些中间级结构。为此,我们为作者姓名的样本建立了基础事实,该名称是共同作者网络中不同类型节点的统计代表,以其对网络连接的作用而区分。我们终于观察到基于网络的介观结构的节点角色的这种区别,与姓氏的共同化的量化,建议通过同名评估网络失真的新方法,并分析网络中的失真减少消歧后,无需基础真相抽样。

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