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Development of a Natural Language Processing System to Identify Timing and Status of Colonoscopy Testing in Electronic Medical Records

机译:开发自然语言处理系统以识别电子病历中结肠镜检查时间和状态

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摘要

Colorectal cancer (CRC) screening rates are low despite proven benefits. We developed natural language processing (NLP) algorithms to identify temporal expressions and status indicators, such as “patient refused” or “test scheduled.” The authors incorporated the algorithms into the KnowledgeMap Concept Identifier system in order to detect references to completed colonoscopies within electronic text. The modified NLP system was evaluated using 200 randomly selected electronic medical records (EMRs) from a primary care population aged ≥50 years. The system detected completed colonoscopies with recall and precision of 0.93 and 0.92. The system was superior to a query of colonoscopy billing codes to determine screening status.
机译:尽管已证实有益处,但结直肠癌(CRC)筛查率仍然很低。我们开发了自然语言处理(NLP)算法,以识别时间表达和状态指示符,例如“患者拒绝”或“预定考试”。作者将算法合并到KnowledgeMap概念标识符系统中,以检测对电子文本中完整结肠镜检查的引用。使用来自年龄≥50岁的初级保健人群的200个随机选择的电子病历(EMR)对改良的NLP系统进行评估。系统检测到完整的结肠镜检查,召回率和精确度分别为0.93和0.92。该系统优于确定结肠镜检查计费代码的查询状态。

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