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What’s in a Note? Unpacking Predictive Value in Clinical Note Representations

机译:注释中有什么?在临床笔记陈述中展现预测价值

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摘要

Electronic Health Records (EHRs) have seen a rapid increase in adoption during the last decade. The narrative prose contained in clinical notes is unstructured and unlocking its full potential has proved challenging. Many studies incorporating clinical notes have applied simple information extraction models to build representations that enhance a downstream clinical prediction task, such as mortality or readmission. Improved predictive performance suggests a “good” representation. However, these extrinsic evaluations are blind to most of the insight contained in the notes. In order to better understand the power of expressive clinical prose, we investigate both intrinsic and extrinsic methods for understanding several common note representations. To ensure replicability and to support the clinical modeling community, we run all experiments on publicly-available data and provide our code.
机译:在过去十年中,电子健康记录(EHR)的采用率迅速上升。临床笔记中包含的叙事散文是无结构的,释放其全部潜力已被证明具有挑战性。许多纳入临床注释的研究已应用简单的信息提取模型来构建表示,以增强下游临床预测任务,例如死亡率或再入院率。改进的预测性能表明“良好”的表示。但是,这些外部评估对注释中包含的大多数见解是盲目的。为了更好地理解表达性临床散文的力量,我们研究了内在和外在方法,以理解几种常见的音符表示。为了确保可复制性并支持临床建模社区,我们对公开可用的数据进行了所有实验并提供了代码。

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