Co-ranking Authors and Documents in a Heterogeneous Network

Ding Zhou, Sergey A. Orshanskiy, H. Zha, C. Lee Giles
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引用次数: 269

Abstract

Recent graph-theoretic approaches have demonstrated remarkable successes for ranking networked entities, but most of their applications are limited to homogeneous networks such as the network of citations between publications. This paper proposes a novel method for co-ranking authors and their publications using several networks: the social network connecting the authors, the citation network connecting the publications, as well as the authorship network that ties the previous two together. The new co-ranking framework is based on coupling two random walks, that separately rank authors and documents following the PageRankparadigm. As a result, improved rankings of documents and their authors depend on each other in a mutually reinforcing way, thus taking advantage of the additional information implicit in the heterogeneous network of authors and documents.
异构网络中作者和文献的共同排名
最近的图论方法在对网络实体进行排名方面取得了显著的成功,但它们的大多数应用仅限于同质网络,例如出版物之间的引用网络。本文提出了一种利用几种网络对作者及其出版物进行联合排名的新方法:连接作者的社会网络、连接出版物的引文网络以及将前两者联系在一起的作者身份网络。新的联合排名框架基于两个随机漫步的耦合,它们分别按照PageRankparadigm对作者和文档进行排名。因此,文档及其作者的改进排名以一种相互增强的方式相互依赖,从而利用了作者和文档的异构网络中隐含的额外信息。
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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