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Inferring Query Performance Using Pre-retrieval Predictors

机译:使用预检索预测器推断出查询性能

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The prediction of query performance is an interesting and important issue in Information Retrieval (IR). Current predictors involve the use of relevance scores, which are time-consuming to compute. Therefore, current predictors are not very suitable for practical applications. In this paper, we study a set of predictors of query performance, which can be generated prior to the retrieval process. The linear and non-parametric correlations of the predictors with query performance axe thoroughly assessed on the TREC disk4 and disk5 (minus CR) collections. According to the results, some of the proposed predictors have significant correlation with query performance, showing that these predictors can be useful to infer query performance in practical applications.
机译:查询性能的预测是信息检索(IR)中的一个有趣和重要的问题。当前预测因子涉及使用相关性分数,这是计算的耗时。因此,当前预测器不是非常适合实际应用。在本文中,我们研究了一组查询性能的预测因子,可以在检索过程之前生成。在TREC DISK4和DISK5(减号CR)集合上彻底评估了具有查询性能AX的预测器的线性和非参数相关性。根据结果​​,一些提议的预测因子与查询性能具有显着的相关性,表明这些预测因子可以在实际应用中推断出查询性能。

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