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Identifying peripheral arterial disease cases using natural language processing of clinical notes

机译:使用临床票据的自然语言处理鉴定外周血动脉病病例

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Peripheral arterial disease (PAD) is a chronic disease that affects millions of people worldwide. Ascertaining PAD status from clinical notes by manual chart review is labor intensive and time consuming. In this paper, we describe a natural language processing (NLP) algorithm for automated ascertainment of PAD status from clinical notes using predetermined criteria. We developed and evaluated our system against a gold standard that was created by medical experts based on manual chart review. Our system ascertained PAD status from clinical notes with high sensitivity (0.96), positive predictive value (0.92), negative predictive value (0.99) and specificity (0.98). NLP approaches can be used for rapid, efficient and automated ascertainment of PAD cases with implications for patient care and epidemiologic research.
机译:外周动脉疾病(垫)是一种慢性疾病,影响全球数百万人。通过手动图表评论的临床票据的确定垫状态是劳动密集且耗时的耗时。在本文中,我们描述了一种使用预定标准从临床笔记自动确定的自动确定垫状态的自然语言处理(NLP)算法。我们根据手动图表审查开发和评估了我们对由医疗专家创建的金牌的系统。我们的系统从具有高灵敏度(0.96),阳性预测值(0.92),负预测值(0.99)和特异性(0.98)的临床注意,从临床状态确定垫状态。 NLP方法可用于患者护理和流行病学研究的启示,可用于快速,高效,自动确定的垫案例。

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