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首页> 外文期刊>American Journal of Epidemiology >Controlling for Informed Presence Bias Due to the Number of Health Encounters in an Electronic Health Record
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Controlling for Informed Presence Bias Due to the Number of Health Encounters in an Electronic Health Record

机译:控制由于电子病历中的健康状况而导致的信息存在偏差

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摘要

Electronic health records (EHRs) are an increasingly utilized resource for clinical research. While their size allows for many analytical opportunities, as with most observational data there is also the potential for bias. One of the key sources of bias in EHRs is what we term informed presence-the notion that inclusion in an EHR is not random but rather indicates that the subject is ill, making people in EHRs systematically different from those not in EHRs. In this article, we use simulated and empirical data to illustrate the conditions under which such bias can arise and how conditioning on the number of health-care encounters can be one way to remove this bias. In doing so, we also show when such an approach can impart M bias, or bias from conditioning on a collider. Finally, we explore the conditions under which number of medical encounters can serve as a proxy for general health. We apply these methods to an EHR data set from a university medical center covering the years 2007-2013.
机译:电子健康记录(EHR)是临床研究中越来越多地被利用的资源。尽管它们的大小提供了许多分析机会,但与大多数观测数据一样,也存在潜在的偏差。电子病历中偏见的主要根源之一是我们所说的知情存在的观念,即电子病历中的纳入不是随机的,而是表明受试者有病,这使得电子病历中的人与非电子病历中的人系统地不同。在本文中,我们使用模拟和经验数据来说明可能会出现这种偏差的条件,以及如何应对医疗保健次数是消除这种偏差的一种方法。这样做时,我们还显示了这种方法何时可以赋予M偏差或对撞机的调节带来的偏差。最后,我们探讨了在何种条件下可以进行多次医疗就诊以代表整体健康。我们将这些方法应用于大学医学中心涵盖2007-2013年的EHR数据集。

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