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Re-ranking with context for high-performance biomedical information retrieval

机译:通过上下文重新排序以实现高性能生物医学信息检索

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摘要

In this paper, we present a context-sensitive approach to re-ranking retrieved documents for further improving the effectiveness of high-performance biomedical literature retrieval systems. For each topic, a two-dimensional positive context is learnt from the top N retrieved documents and a group of negative contexts are learnt from the last N′ documents in initial retrieval ranked list. The contextual space contains lexical context and conceptual context. The probabilities that retrieved documents are generated within the contextual space are then computed for document re-ranking. Empirical evaluation on the TREC Genomics full-text collection and three high-performance biomedical literature retrieval runs demonstrates that the context-sensitive re-ranking approach yields better retrieval performance.
机译:在本文中,我们提出了一种上下文相关的方法来对检索到的文档进行重新排序,以进一步提高高性能生物医学文献检索系统的有效性。对于每个主题,从最初的检索排名列表中的前N个文档中学习一个二维的正性上下文,并从最后的N'个文档中学习一组负性的上下文。上下文空间包含词汇上下文和概念上下文。然后在上下文空间内生成检索到的文档的概率,以对文档重新排序。对TREC Genomics全文本收集和三个高性能生物医学文献检索运行的经验评估表明,上下文相关的重新排序方法可产生更好的检索性能。

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