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Generating Query Substitutions

机译:生成查询替换

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摘要

We introduce the notion of query substitution, that is, generating a new query to replace a user's original search query. Our technique uses modifications based on typical substitutions web searchers make to their queries. In this way the new query is strongly related to the original query, containing terms closely related to all of the original terms. This contrasts with query expansion through pseudo-relevance feedback, which is costly and can lead to query drift. This also contrasts with query relaxation through boolean or TFIDF retrieval, which reduces the specificity of the query. We define a scale for evaluating query substitution, and show that our method performs well at generating new queries related to the original queries. We build a model for selecting between candidates, by using a number of features relating the query-candidate pair, and by fitting the model to human judgments of relevance of query suggestions. This further improves the quality of the candidates generated. Experiments show that our techniques significantly increase coverage and effectiveness in the setting of sponsored search.
机译:我们介绍了查询替换的概念,即生成新查询以替换用户的原始搜索查询。我们的技术使用基于典型替换的修改Web搜索者对他们的查询。以这种方式,新查询与原始查询强烈相关,包含与所有原始术语密切相关的术语。通过伪相关反馈来对比,通过伪相关反馈,这是昂贵的并且可能导致查询漂移。这也通过Boolean或TFIDF检索来对比查询放松,从而降低了查询的特殊性。我们定义了评估查询替换的规模,并显示我们的方法在生成与原始查询相关的新查询时执行良好。我们通过使用关于查询候选对的许多特征来构建用于在候选者之间选择的模型,并通过将模型拟合到人类判断的相关性建议的相关性。这进一步提高了所产生的候选者的质量。实验表明,我们的技术在赞助搜索的环境中显着增加了覆盖率和有效性。

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