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Query Expansion For Handling Exploratory And Ambiguous Keyword Queries.

机译:查询扩展以处理探索性和模棱两可的关键字查询。

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摘要

Query Expansion is a functionality of search engines that suggest a set of related queries for a user issued keyword query. In case of exploratory or ambiguous keyword queries, the main goal of the user would be to identify and select a specific category of query results among different categorical options, in order to narrow down the search and reach the desired result. Typical corpus-driven keyword query expansion approaches return popular words in the results as expanded queries. These empirical methods fail to cover all semantics of categories present in the query results. More importantly these methods do not consider the semantic relationship between the keywords featured in an expanded query. Contrary to a normal keyword search setting, these factors are non-trivial in an exploratory and ambiguous query setting where the user's precise discernment of different categories present in the query results is more important for making subsequent search decisions.;In this thesis, I propose a new framework for keyword query expansion: generating a set of queries that correspond to the categorization of original query results, which is referred as Categorizing query expansion. Two approaches of algorithms are proposed, one that performs clustering as pre-processing step and then generates categorizing expanded queries based on the clusters. The other category of algorithms handle the case of generating quality expanded queries in the presence of imperfect clusters.
机译:查询扩展是搜索引擎的功能,可以为用户发出的关键字查询建议一组相关查询。在探索性或模棱两可的关键字查询的情况下,用户的主要目标是在不同的分类选项中识别并选择查询结果的特定类别,以缩小搜索范围并获得所需的结果。典型的语料库驱动的关键字查询扩展方法将结果中的热门单词作为扩展查询返回。这些经验方法无法覆盖查询结果中存在的所有类别的语义。更重要的是,这些方法没有考虑扩展查询中的关键字之间的语义关系。与正常的关键字搜索设置相反,这些因素在探索性和模棱两可的查询设置中并非无关紧要,其中用户对查询结果中存在的不同类别的精确区分对于做出后续搜索决策更为重要。关键字查询扩展的新框架:生成一组与原始查询结果的分类相对应的查询,这称为对查询扩展进行分类。提出了两种算法,一种是将聚类作为预处理步骤,然后根据聚类生成分类扩展查询。另一类算法处理在存在不完善集群的情况下生成质量扩展查询的情况。

著录项

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Information Science.;Computer Science.
  • 学位 M.S.
  • 年度 2011
  • 页码 107 p.
  • 总页数 107
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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