基于用户标记的本体学习用于标签推荐

E. Djuana, Yue Xu, Yuefeng Li, A. Jøsang
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引用次数: 4

摘要

最近,用户标签系统在网络上越来越受欢迎。标记过程对于普通用户来说非常简单,这有助于它的流行。然而,自由词汇缺乏规范化,存在语义歧义。从用户标记中捕获语义到某种形式的本体是可能的,但是将生成的本体用于推荐的应用还没有那么繁荣。本文讨论了从用户标签信息中学习领域本体的方法,并将提取的标签本体应用于试点标签推荐实验。初步结果表明,利用标签本体对推荐标签进行重新排序,可以提高标签推荐的准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ontology Learning from User Tagging for Tag Recommendation Making
Recently, user tagging systems have grown in popularity on the web. The tagging process is quite simple for ordinary users, which contributes to its popularity. However, free vocabulary has lack of standardization and semantic ambiguity. It is possible to capture the semantics from user tagging into some form of ontology, but the application of the resulted ontology for recommendation making has not been that flourishing. In this paper we discuss our approach to learn domain ontology from user tagging information and apply the extracted tag ontology in a pilot tag recommendation experiment. The initial result shows that by using the tag ontology to re-rank the recommended tags, the accuracy of the tag recommendation can be improved.
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