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Recognizing hierarchically related biomedical entities using MeSH-based mapping

机译:使用基于MeSH的映射识别与层次相关的生物医学实体

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摘要

Identifying hierarchically related entities is a critical step towards constructing bio-networks in the field of biomedical text mining. To this end, we adopt a mapping-based approach by first mapping bio-entities to terms in an established ontology Medical Subject Headings (MeSH). We then utilize the hierarchical relationships available in MeSH to recognize hierarchically related entities. Specifically, we present two approaches to map biomedical entities identified using the Unified Medical Language System (UMLS) Metathesaurus to MeSH terms. The first approach utilizes a special feature provided by the MetaMap algorithm, whereas the other employs approximate phrase-based match to directly map entities to MeSH terms. These two approaches deliver comparable results with an accuracy of 72% and 75%, respectively, based on two evaluation datasets. A thorough error analysis demonstrates that these two approaches result in only around 10% mutual errors, indicating the complementary nature of these two approaches.
机译:识别层次结构相关的实体是在生物医学文本挖掘领域构建生物网络的关键步骤。为此,我们采用基于映射的方法,首先将生物实体映射到已建立的本体医学主题词(MeSH)中的术语。然后,我们利用MeSH中可用的层次关系来识别层次相关的实体。具体来说,我们提供了两种方法,可将使用统一医学语言系统(UMLS)元同义词库识别的生物医学实体映射到MeSH术语。第一种方法利用了MetaMap算法提供的特殊功能,而另一种方法则采用了基于短语的近似匹配来直接将实体映射到MeSH术语。基于两个评估数据集,这两种方法可提供可比较的结果,准确度分别为72%和75%。彻底的错误分析表明,这两种方法只会导致大约10%的相互错误,表明这两种方法是互补的。

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