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A system for information retrieval in a medical digital library based on modular ontologies and query reformulation

机译:基于模块化本体和查询重构的医学数字图书馆信息检索系统

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Ontologies have proven to be useful in the area of Information Retrieval and the biomedical informatics community has acknowledged, in recent years, their utility. However, building and updating manually ontologies is a long and tedious task. This paper proposes a system that allows any search engine to develop its semantic layer by applying ontology learning techniques on Web snippets and applies it to a well-known medical digital library, PubMed. The new system (SemPubMed) automatically builds new ontology fragments related to the user's query and then it reformulates queries using the new concepts in order to improve information retrieval. Our system has endured a twofold evaluations. On the one hand, we have evaluated the quality of the modular ontologies built by the system. On the other hand, we have studied how the semantic reformulation of the queries has led to an improvement of the quality of the results given by PubMed, both in terms of precision and recall. Obtained results show that adding semantic layer to PubMed enables an improvement of query reformulation and predicted ranking score.
机译:本体论已被证明在信息检索领域是有用的,并且生物医学信息学界近年来已经认识到它们的效用。但是,构建和更新手动本体是一项长期而繁琐的任务。本文提出了一个系统,该系统允许任何搜索引擎通过在Web片段上应用本体学习技术来开发其语义层,并将其应用于著名的医学数字图书馆PubMed。新系统(SemPubMed)自动构建与用户查询相关的新本体片段,然后使用新概念重新构造查询,以改善信息检索。我们的系统经历了两次评估。一方面,我们评估了系统构建的模块化本体的质量。另一方面,我们已经研究了查询的语义重新表述如何在准确性和查全率方面提高了PubMed给出的结果的质量。获得的结果表明,将语义层添加到PubMed可以改善查询的重新编制和预测的排名得分。

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