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Moonstone: a novel natural language processing system for inferring social risk from clinical narratives

机译:Moonstone:一种新型的自然语言处理系统,用于推断临床叙事的社会风险

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摘要

Abstract Background Social risk factors are important dimensions of health and are linked to access to care, quality of life, health outcomes and life expectancy. However, in the Electronic Health Record, data related to many social risk factors are primarily recorded in free-text clinical notes, rather than as more readily computable structured data, and hence cannot currently be easily incorporated into automated assessments of health. In this paper, we present Moonstone, a new, highly configurable rule-based clinical natural language processing system designed to automatically extract information that requires inferencing from clinical notes. Our initial use case for the tool is focused on the automatic extraction of social risk factor information — in this case, housing situation, living alone, and social support — from clinical notes. Nursing notes, social work notes, emergency room physician notes, primary care notes, hospital admission notes, and discharge summaries, all derived from the Veterans Health Administration, were used for algorithm development and evaluation. Results An evaluation of Moonstone demonstrated that the system is highly accurate in extracting and classifying the three variables of interest (housing situation, living alone, and social support). The system achieved positive predictive value (i.e. precision) scores ranging from 0.66 (homeless/marginally housed) to 0.98 (lives at home/not homeless), accuracy scores ranging from 0.63 (lives in facility) to 0.95 (lives alone), and sensitivity (i.e. recall) scores ranging from 0.75 (lives in facility) to 0.97 (lives alone). Conclusions The Moonstone system is — to the best of our knowledge — the first freely available, open source natural language processing system designed to extract social risk factors from clinical text with good (lives in facility) to excellent (lives alone) performance. Although developed with the social risk factor identification task in mind, Moonstone provides a powerful tool to address a range of clinical natural language processing tasks, especially those tasks that require nuanced linguistic processing in conjunction with inference capabilities.
机译:摘要背景的社会风险因素是健康的重要方面,并链接到获得医疗保健,生活质量,健康状况和平均寿命。然而,在电子健康记录中,涉及到很多社会风险因素的数据主要是记录在自由文本临床记录,而不是更容易可计算的结构化数据,因此目前还不能很容易地纳入健康的自动评估。在本文中,我们目前月光石,一个新的,高度可配置的基于规则的临床自然语言处理设计,需要从临床笔记推理自动提取信息系统。我们的工具初次使用情况的重点是社会风险因素的信息自动提取 - 在这种情况下,住房状况,独居,与社会支持 - 从临床记录。护理记录,社会工作笔记,急诊室医师指出,基层医疗票据,住院票据和出院小结,全部由退伍军人健康管理局得到的,被用于算法开发和评估。结果月光石的评估表明,该系统是在提取和感兴趣的三个变量进行分类(住房情况,独居和社会支持)高度精确。该系统实现的阳性预测值(即精度)的分数范围从0.66(无家可归/轻微容纳)到0.98(在家庭生活/不无家可归),精度分数(单独生活)范围为0.63(在设施的生活)至0.95,和灵敏度(即调用)的分数(独居)从0.75(在工厂的生活)到0.97。结论月光石系统 - 就我们所知 - 旨在从临床文本具有良好的(生活设施),以优异的(单独生活)的性能提取社会风险因素,第一个免费的,开源的自然语言处理系统。虽然在头脑里的社会风险因素识别任务的发展,月光石提供了强大的工具来解决一系列的临床自然语言处理的任务,尤其是那些需要与推理能力,结合细致入微的语言处理任务。

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