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Supporting the Abstraction of Clinical Practice Guidelines Using Information Extraction

机译:使用信息提取支持临床实践指南的抽象

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Modelling clinical practice guidelines in a computer-interpretable format is a challenging and complex task. The modelling process involves both medical experts and computer scientists, who have to interact and communicate together. In order to support both modeller groups we propose to provide them with helpful information automatically generated using NLP methods. We identify this information using rules based on both syntactic and semantic information. The majority of the defined information extraction rules are based on semantic relationships derived from the UMLS Semantic Network. Findings in the evaluation indicate that using rules based on semantic and syntactic information provide valuable and helpful results.
机译:以计算机可解释的格式建模临床实践指南是一个具有挑战性和复杂的任务。建模过程涉及医学专家和计算机科学家,他们必须共同互动和沟通。为了支持Solideller组,我们建议为它们提供有用的信息,使用NLP方法自动生成。我们使用基于句法和语义信息的规则来确定此信息。大多数定义的信息提取规则基于从UMLS语义网络派生的语义关系。评估中的调查结果表明,使用基于语义和句法信息的规则提供有价值和有用的结果。

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