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Beyond MeSH: Fine-grained semantic indexing of biomedical literature based on weak supervision

机译:除了网格之外:基于弱监管的生物医学文献的细粒度语义索引

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摘要

In this work, we propose a method for the automated refinement of subject annotations in biomedical literature at the level of concepts. Semantic indexing and search of biomedical articles in MEDLINE/PubMed are based on semantic subject annotations with MeSH descriptors that may correspond to several related but distinct biomedical concepts. Such semantic annotations do not adhere to the level of detail available in the domain knowledge and may not be sufficient to fulfil the information needs of experts in the domain. To this end, we propose a new method that uses weak supervision to train a concept annotator on the literature available for a particular disease. We test this method on the MeSH descriptors for two diseases: Alzheimer's Disease and Duchenne Muscular Dystrophy. The results indicate that concept-occurrence is a strong heuristic for automated subject annotation refinement and its use as weak supervision can lead to improved concept-level annotations. The fine-grained semantic annotations can enable more precise literature retrieval, sustain the semantic integration of subject annotations with other domain resources and ease the maintenance of consistent subject annotations, as new more detailed entries are added in the MeSH thesaurus over time.
机译:在这项工作中,我们提出了一种在概念水平下自动改进生物医学文献中的主题注释的方法。语义索引和搜索Medline / Pubmed中的生物医学文章基于语义对象注释,其可以对应于多种相关但不同的生物医学概念。此类语义注释不会遵守域知识中可用的细节水平,并且可能不足以满足域中专家的信息需求。为此,我们提出了一种新方法,该方法使用弱监督来培训针对特定疾病的文献中的概念注释。我们在两种疾病的网格描述符上测试此方法:Alzheimer的疾病和Duchenne肌肉营养不良。结果表明,概念发生是自动对象注释细化的强大启发式,因为它的使用作为弱势监督可能导致改进的概念级注释。细粒度的语义注释可以实现更精确的文献检索,维持与其他域资源的对象注释的语义集成,并缓解维持一致的对象注释,因为新的更多详细条目随着时间的推移。

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