研究支持系统Papits的论文推荐机制

Satoshi Watanabe, Takayuki Ito, Tadachika Ozono, T. Shintani
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引用次数: 26

摘要

我们开发了研究支援系统Papits,可以在网络上的计算机上共享研究论文的PDF文件等研究信息,并将这些信息分类为研究类型。Papits用户可以分享各种研究信息,并调查他们特定领域的语料库。为了开发Papits,我们需要设计一种机制来识别用户的兴趣。此外,在构建一个有效的论文推荐系统时,仔细创建用户模型是很重要的。提出了一种利用无标度网络构建用户模型的方法。无标度网络具有顶点和边,并通过“偏好附件”确保增长。我们的方法利用论文浏览历史来构建一个基于词共现的无标度网络。构建的网络由表示单词的顶点和表示单词共现的边组成。在我们的方法中,根据用户的论文浏览历史记录将论文添加到网络中。此外,我们定义了“主题权重”。通过使用两个元素;根据话题频次和话题最近度计算话题权重。通过使用数据库中的词共现,我们测量主题频率。此外,我们还利用Jaccard系数来衡量话题的近代性。结果表明,该方法可以有效地为Papits用户推荐文档。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A paper recommendation mechanism for the research support system Papits
We have developed Papits, a research support system, that shares research information, such as PDF files of research papers, in computers on networks and classifies the information into research types. Papits users can share various research information and survey the corpora of their particular fields. To develop Papits, we need to design a mechanism to identify a user's interest. Also, when constructing an effective paper recommendation system, it is important to carefully create user's models. We propose a method to construct user's models using the scale-free network. The scale-free network has vertices and edges, and ensures growth by 'preference attachments'. Our method applies a paper viewing history to construct a scale-free network based on the word co-occurrence. A constructed network consists of vertices that represent words, and edges that represent the word co-occurrence. In our method, a paper is added to the network as indicated by a user's paper viewing history. Additionally we define the 'topic weight'. By using two elements; the topic frequency and the topic recency, we calculate the topic weight. By using the word co-occurrence in a database, we measure the topic frequency. Also, by using the Jaccard coefficient, we measure the topic recency. Our result indicates that our method can effectively recommend documents for Papits users.
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