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Coreference Resolution for Structured Drug Product Labels

机译:结构化药物产品标签的COREREFED分辨率

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FDA drug package inserts provide comprehensive and authoritative information about drugs. DailyMed database is a repository of structured product labels extracted from these package inserts. Most salient information about drugs remains in free text portions of these labels. Extracting information from these portions can improve the safety and quality of drug prescription. In this paper, we present a study that focuses on resolution of coref-erential information from drug labels contained in DailyMed. We generalized and expanded an existing rule-based coreference resolution module for this purpose. Enhancements include resolution of set/instance anaphora, recognition of ap-positive constructions and wider use of UMLS semantic knowledge. We obtained an improvement of 40% over the baseline with unweighted average F_1-measure using B-CUBED, MUC, and CEAF metrics. The results underscore the importance of set/instance anaphora and appositive constructions in this type of text and point out the shortcomings in coreference annotation in the dataset.
机译:FDA药物包插页提供有关药物的全面和权威的信息。 Dailymed数据库是从这些包装插入件中提取的结构化产品标签的存储库。有关药物的大多数突出的信息仍然是这些标签的自由文本部分。从这些部分中提取信息可以提高药物处方的安全性和质量。在本文中,我们提出了一项研究,专注于解决Dailymed中所含药物标签的Coref-zhibly信息。为此目的,我们概括并扩展了基于规则的Coreference解决模块。增强功能包括Set /实例的解决方案,识别AP正面结构并更广泛地使用UMLS语义知识。通过使用B级,MUC和ecrics的未加权平均f_1测量,我们在基线获得了40%的改善。结果强调了在此类型文本中设置/实例的重要性,并指出了数据集中的Coreference注释中的缺点。

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