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Exploring Accumulative Query Expansion for Relevance Feedback

机译:探索相关查询的累积查询扩展

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For the participation of Dublin City University (DCU) in the Relevance Feedback (RF) track of INEX 2010, we investigated the relation between the length of relevant text passages and the number of RF terms. In our experiments, relevant passages are segmented into non-overlapping windows of fixed length which are sorted by similarity with the query. In each retrieval iteration, we extend the current query with the most frequent terms extracted from these word windows. The number of feedback terms corresponds to a constant number, a number proportional to the length of relevant passages, and a number inversely proportional to the length of relevant passages, respectively. Retrieval experiments show a significant increase in MAP for INEX 2008 training data and improved precisions at early recall levels for the 2010 topics as compared to the baseline Rocchio feedback.
机译:为了使都柏林城市大学(DCU)参与INEX 2010的相关性反馈(RF)跟踪,我们研究了相关文本段落的长度与RF术语数之间的关系。在我们的实验中,相关段落被分成固定长度的不重叠窗口,这些窗口按照与查询的相似性进行排序。在每次检索迭代中,我们使用从这些单词窗口中提取的最常用术语扩展当前查询。反馈项的数量分别对应于一个常数,一个与相关段落的长度成比例的数字和一个与相关段落的长度成反比的数字。检索实验显示,与基准Rocchio反馈相比,用于INEX 2008培训数据的MAP显着增加,并且在2010主题的早期召回水平上提高了精度。

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