Regression-Based Documents Reranking for Precision Medicine

Juncheng Ding, Wei Jin, Haihua Chen
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Abstract

Precision medicine information retrieval (PM IR) is about matching the most relevant scientific articles to an individual patient for reliable disease treatment. To achieve effectiveness and efficiency, the task usually consists of two stages: conventional information retrieval and reranking. Many approaches have been proposed for reranking. However, the performance is still far from satisfactory. In this work, we propose a regression-based reranking scheme for PM IR which uses labelled data regardless of empirical knowledge from similar but not identical documents set. Experiments validate that the performance of our approach is significantly better than that of the state-of-the-art approaches.
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基于回归的精准医学文献重排序
精确医学信息检索(PM IR)是将最相关的科学文章与个体患者进行匹配,以获得可靠的疾病治疗。为了达到有效性和效率,任务通常包括两个阶段:常规信息检索和重新排序。已经提出了许多重新排序的方法。然而,表现还远远不能令人满意。在这项工作中,我们提出了一种基于回归的PM IR重新排序方案,该方案使用标记数据,而不考虑来自相似但不相同的文档集的经验知识。实验证明,我们的方法的性能明显优于最先进的方法。
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