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A simple real-time model for predicting acute kidney injury in hospitalized patients in the US: A descriptive modeling study

机译:一种用于预测美国住院患者急性肾损伤的简单实时模型:描述性建模研究

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摘要

BackgroundAcute kidney injury (AKI) is an adverse event that carries significant morbidity. Given that interventions after AKI occurrence have poor performance, there is substantial interest in prediction of AKI prior to its diagnosis. However, integration of real-time prognostic modeling into the electronic health record (EHR) has been challenging, as complex models increase the risk of error and complicate deployment. Our goal in this study was to create an implementable predictive model to accurately predict AKI in hospitalized patients and could be easily integrated within an existing EHR system.
机译:背景急性肾损伤(AKI)是一种不良事件,具有很高的发病率。鉴于AKI发生后的干预措施效果较差,因此在诊断AKI之前对预测AKI表现出极大的兴趣。然而,由于复杂的模型增加了出错的风险并使部署复杂化,因此将实时预测模型集成到电子健康记录(EHR)中一直是一项挑战。我们在这项研究中的目标是创建一个可实施的预测模型,以准确预测住院患者的AKI,并可以轻松地将其集成到现有的EHR系统中。

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