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Improving Information Retrieval in MEDLINE by Modulating MeSH Term Weights

机译:通过调制网格术语权重改善MEDLINE中的信息检索

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摘要

MEDLINE is a widely used very large database of natural language medical data, mainly abstracts of research papers in medical domain. The documents in it are manually supplied with keywords from a controlled vocabulary, called MeSH terms. We show that (1) a vector space model-based retrieval system applied to the full text of the documents gives much better results than the Boolean model-based system supplied with MEDLINE, and (2) assigning greater weights to the MeSH terms than to the terms in the text of the documents provides even better results than the standard vector space model. The resulting system outperforms the retrieval system supplied with MEDLINE as much as 2.4 times.
机译:Medline是一种广泛使用的自然语言医疗数据数据库,主要是医学领域的研究论文的摘要。它中的文档通过来自受控词汇表的关键字手动提供,称为网格术语。我们展示(1)应用于文档的全文的基于矢量空间模型的检索系统,提供了比带有Medline的基于布尔模型的系统的更好的结果,并且(2)将更大的重量分配给网格术语而不是文本文本中的术语提供了比标准矢量空间模型更好的结果。由此产生的系统优于使用MEDLINE提供的检索系统,如2.4次。

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