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A unified graph model for personalized query-oriented reference paper recommendation

机译:面向个性化查询的参考论文推荐的统一图模型

摘要

With the tremendous amount of research publications, it has become increasingly important to provide a researcher with a rapid and accurate recommendation of a list of reference papers about a research field or topic. In this paper, we propose a unified graph model that can easily incorporate various types of useful information (e.g., content, authorship, citation and collaboration networks etc.) for efficient recommendation. The proposed model not only allows to thoroughly explore how these types of information can be better combined, but also makes personalized query-oriented reference paper recommendation possible, which as far as we know is a new issue that has not been explicitly addressed in the past. The experiments have demonstrated the clear advantages of personalized recommendation over non-personalized recommendation.
机译:随着研究出版物的大量涌现,为研究人员提供有关研究领域或主题的参考文献列表的快速,准确推荐已变得越来越重要。在本文中,我们提出了一个统一的图形模型,可以轻松地合并各种类型的有用信息(例如内容,作者,引文和协作网络等)以进行有效推荐。提出的模型不仅可以彻底探索如何更好地组合这些类型的信息,而且还可以使个性化的面向查询的参考文件推荐成为可能,据我们所知,这是一个过去尚未明确解决的新问题。实验证明了个性化推荐相对于非个性化推荐的明显优势。

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