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A Natural Language Processing Tool to Extract Quantitative Smoking Status from Clinical Narratives

机译:一种自然语言处理工具,用于从临床叙述中提取定量吸烟状态

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This study presents a natural language processing (NLP) tool to extract quantitative smoking information (e.g., Pack-Year, Quit Year, Smoking Year, and Pack per Day) from clinical notes and standardized them into Pack-Year unit. We annotated a corpus of 200 clinical notes from patients who had low-dose CT imaging procedures for lung cancer screening and developed an NLP system using a two-layer rule-engine structure. We divided the 200 notes into a training set and a test set and developed the NLP system only using the training set. The experimental results on the test set showed that our NLP system achieved the best F1 scores of 0.963 and 0.946 for lenient and strict evaluation, respectively.
机译:本研究提出了一种自然语言处理(NLP)工具,可以从临床票据中提取定量吸烟信息(例如,包装,戒烟年,吸烟年,吸烟,并将其标准化为包装年份单位。我们向患者注释了200名临床票据的患者,用于肺癌筛选的低剂量CT成像程序,并使用双层规则发动机结构开发了NLP系统。我们将200个注释划分为培训集和测试集,并仅使用培训集开发了NLP系统。测试组上的实验结果表明,我们的NLP系统分别达到了0.963和0.946的最佳F1分数,分别用于宽松和严格的评估。

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