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Unsupervised Query Categorization using Automatically-Built Concept Graphs

机译:使用自动构建概念图的无监督查询分类

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Automatic categorization of user queries is an important component of general purpose (Web) search engines, particularly for triggering rich, query-specific content and sponsored links. We propose an unsupervised learning scheme that reduces dramatically the cost of setting up and maintaining such a categorizer, while retaining good categorization power. The model is stored as a graph of concepts where graph edges represent the cross-reference between the concepts. Concepts and relations are extracted from query logs by an offline Web mining process, which uses a search engine as a powerful summarizer for building a concept graph. Empirical evaluation indicates that the system compares favorably on publicly available data sets (such as KDD Cup 2005) as well as on portions of the current query stream of Yahoo! Search, where it is already changing the experience of millions of Web search users.
机译:用户查询的自动分类是通用(Web)搜索引擎的重要组成部分,尤其是对于触发丰富的查询特定内容和赞助链接而言。我们提出了一种无监督的学习方案,该方案可以在保持良好分类能力的同时,大大降低设置和维护此类分类器的成本。该模型存储为概念图,其中图边缘表示概念之间的交叉引用。脱机Web挖掘过程从查询日志中提取概念和关系,该过程使用搜索引擎作为构建概念图的强大汇总器。实证评估表明,该系统在可公开获得的数据集(例如KDD Cup 2005)以及Yahoo!当前查询流的某些部分上具有可比性。搜索,它已经在改变着数以百万计的Web搜索用户的体验。

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