利用外部知识进行姓名消歧

Q. Vu, A. Takasu, J. Adachi
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引用次数: 0

摘要

万维网(WWW)上的信息量正以爆炸性的速度增长,计算机系统在处理如此庞大的数据方面的作用变得至关重要。在本文中,我们关注的是搜索人物时的姓名消歧问题,因为关于人物的信息是网络的重要组成部分,个人信息的改进可能会使许多网民受益。在搜索人员时,经常会出现名称歧义问题,因为一个名称可能由几个人共享。在本研究中,我们在解决这个问题的同时使用了外部知识,这样我们可以更容易地分析web文档中的信息。我们收集web目录,并使用潜在狄利克雷分配方法从web目录中提取潜在主题。提取的主题用于修改搜索结果文档,以便能够更容易地识别有助于区分人员的重要上下文。我们对真实的web文档进行了实验,并验证了我们的方法比其他使用向量空间模型和命名实体识别方法的消歧方法的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Utilization of external knowledge for personal name disambiguation
The amount of information on the World Wide Web (WWW) is increasing at an explosive rate, and the role of computer systems in processing such a huge amount of data has become crucial. In this paper, we focus on the name disambiguation problem when searching for people, because information about people is an important part of the web and improvements to personal information may benefit many web citizens. The name ambiguity problem occurs frequently when searching for people, because a name may be shared by several people. In this research, we use external knowledge while solving this problem, so that we can analyze information in web documents more easily. We collect web directories and use the latent Dirichlet allocation method to extract latent topics from web directories. The extracted topics are used to modify the search result documents so that important contexts that help to discriminate people can be recognized more easily. We carried out experiments with real web documents and verified the advantages of our approach over other disambiguation approaches that use the vector space model and named entity recognition methods.
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