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Query Performance Prediction for Information Retrieval Based on Covering Topic Score

机译:基于覆盖主题得分的信息检索查询性能预测

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摘要

We present a statistical method called Covering Topic Score (CTS) to predict query performance for information retrieval. Estimation is based on how well the topic of a user's query is covered by documents retrieved from a certain retrieval system. Our approach is conceptually simple and intuitive, and can be easily extended to incorporate features beyond bag-of-words such as phrases and proximity of terms. Experiments demonstrate that CTS significantly correlates with query performance in a variety of TREC test collections, and in particular CTS gains more prediction power benefiting from features of phrases and proximity of terms. We compare CTS with previous state-of-the-art methods for query performance prediction including clarity score and robustness score. Our experimental results show that CTS consistently performs better than, or at least as well as, these other methods. In addition to its high effectiveness, CTS is also shown to have very low computational complexity, meaning that it can be practical for real applications.
机译:我们提出一种称为覆盖主题得分(CTS)的统计方法,以预测信息检索的查询性能。估算基于从某个检索系统检索到的文档对用户查询主题的覆盖程度。我们的方法从概念上讲是简单直观的,并且可以轻松地扩展以包含词组和术语接近度之类的词袋以外的功能。实验表明,在多种TREC测试集中,CTS与查询性能显着相关,尤其是CTS得益于短语特征和术语接近性,从而获得了更大的预测能力。我们将CTS与以前的查询性能预测的最新方法进行了比较,包括清晰度得分和鲁棒性得分。我们的实验结果表明,CTS的性能始终优于或至少优于其他方法。除了具有很高的效率外,CTS还被证明具有非常低的计算复杂度,这意味着它对于实际应用是可行的。

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