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ArnetMiner: Extraction and Mining of Academic Social Networks

机译:ArnetMiner:学术社交网络的提取和挖掘

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This paper addresses several key issues in the ArnetMiner system, which aims at extracting and mining academic social networks. Specifically, the system focuses on: 1) Extracting researcher profiles automatically from the Web; 2) Integrating the publication data into the network from existing digital libraries; 3) Modeling the entire academic network; and 4) Providing search services for the academic network. So far, 448,470 researcher profiles have been extracted using a unified tagging approach. We integrate publications from online Web databases and propose a probabilistic framework to deal with the name ambiguity problem. Furthermore, we propose a unified modeling approach to simultaneously model topical aspects of papers, authors, and publication venues. Search services such as expertise search and people association search have been provided based on the modeling results. In this paper, we describe the architecture and main features of the system. We also present the empirical evaluation of the proposed methods.
机译:本文讨论了ArnetMiner系统中的几个关键问题,该系统旨在提取和挖掘学术社交网络。具体而言,该系统着重于:1)从Web自动提取研究者资料; 2)将出版物数据从现有数字图书馆整合到网络中; 3)对整个学术网络进行建模; 4)为学术网络提供搜索服务。到目前为止,已经使用统一的标记方法提取了448,470个研究者档案。我们整合了在线Web数据库中的出版物,并提出了一个概率框架来解决名称歧义性问题。此外,我们提出了一种统一的建模方法,可以同时对论文,作者和出版场所的主题方面进行建模。已基于建模结果提供了诸如专业知识搜索和人员协会搜索之类的搜索服务。在本文中,我们描述了系统的体系结构和主要功能。我们还提出了对所提出的方法的实证评估。

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