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SEARCHING FOR EXPLANATORY WEB PAGES USING AUTOMATIC QUERY EXPANSION

机译:使用自动查询扩展搜索说明性网页

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When one tries to use the Web as a dictionary or encyclopedia, entering some single term into a search engine, the highly ranked pages in the result can include irrelevant or useless sites. The problem is that single-term queries, if taken literally, underspecify the type of page the user wants. For such problems automatic query expansion, also known as pseudo-feedback, is often effective. In this method the top n documents returned by an initial retrieval are used to provide terms for a second retrieval. This paper contributes, first, new normalization techniques for query expansion, and second, a new way of computing the similarity between an expanded query and a document, the "local relevance density" metric, which complements the standard vector product metric. Both of these techniques are shown to be useful for single-term queries, in Japanese, in experiments done over the World Wide Web in early 2001.
机译:当人们试图将Web用作字典或百科全书时,在搜索引擎中输入一些单个术语,结果中排名较高的页面可能包含无关或无用的站点。问题是,如果单字查询是按字面意思进行的,则说明用户指定的页面类型不足。对于此类问题,自动查询扩展(也称为伪反馈)通常很有效。在此方法中,初始检索返回的前n个文档用于提供第二次检索的条件。本文首先为查询扩展提供了新的规范化技术,其次,为计算扩展查询与文档之间的相似性提供了一种新方法,即“本地相关密度”度量,它补充了标准矢量乘积度量。在2001年初通过万维网进行的日语实验中,这两种技术都显示出对单项查询有用。

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