首页> 美国卫生研究院文献>AMIA Annual Symposium Proceedings >HPARSER: extracting formal patient data from free text history and physical reports using natural language processing software.
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HPARSER: extracting formal patient data from free text history and physical reports using natural language processing software.

机译:HPARSER:使用自然语言处理软件从自由文本历史记录和身体报告中提取正式的患者数据。

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摘要

A prototype, HPARSER, processes a patient history and physical report such that specific data are obtained and stored in a patient data record. HPARSER is a recursive transition network (RTN) parser, and includes English and medical grammar rules, lexicon, and database constraints. Medical grammar rules augment the grammar rule base and specify common phrases seen in patient reports (e.g., "pupils are equal and reactive"). Each database constraint associates a grammar rule with a database table and attribute. Constraint behavior is such that if a rule is satisfied, data is extracted from the parse tree and stored into the database. Control reports guided construction of grammar and constraint rules. Test reports were processed with the control rules. 85% of test report sentences parsed and a 60% data capture rate, compared to controls, was achieved. HPARSER demonstrates use of an RTN to parse patient reports, and database constraints to transfer formal data from parse trees into a database.
机译:HPARSER原型处理患者的病史和身体报告,以便获取特定数据并将其存储在患者数据记录中。 HPARSER是一个递归转换网络(RTN)解析器,包括英语和医学语法规则,词典和数据库约束。医学语法规则扩充了语法规则库,并指定了在患者报告中看到的常用短语(例如,“小学生平等且反应活跃”)。每个数据库约束都将语法规则与数据库表和属性相关联。约束行为是这样的:如果满足规则,则从解析树中提取数据并将其存储到数据库中。控制报告指导语法和约束规则的构建。测试报告与控制规则一起处理。与对照组相比,解析了85%的测试报告句子,并实现了60%的数据捕获率。 HPARSER演示了如何使用RTN解析患者报告,以及如何使用数据库约束将形式化数据从解析树传输到数据库中。

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