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首页> 外文期刊>American Journal of Epidemiology >The impact of residual and unmeasured confounding in epidemiologic studies: a simulation study.
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The impact of residual and unmeasured confounding in epidemiologic studies: a simulation study.

机译:流行病学研究中残留和未测混杂因素的影响:模拟研究。

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摘要

Measurement error in explanatory variables and unmeasured confounders can cause considerable problems in epidemiologic studies. It is well recognized that under certain conditions, nondifferential measurement error in the exposure variable produces bias towards the null. Measurement error in confounders will lead to residual confounding, but this is not a straightforward issue, and it is not clear in which direction the bias will point. Unmeasured confounders further complicate matters. There has been discussion about the amount of bias in exposure effect estimates that can plausibly occur due to residual or unmeasured confounding. In this paper, the authors use simulation studies and logistic regression analyses to investigate the size of the apparent exposure-outcome association that can occur when in truth the exposure has no causal effect on the outcome. The authors consider two cases with a normally distributed exposure and either two or four normally distributed confounders. When the confounders are uncorrelated, bias in the exposure effect estimate increases as the amount of residual and unmeasured confounding increases. Patterns are more complex for correlated confounders. With plausible assumptions, effect sizes of the magnitude frequently reported in observational epidemiologic studies can be generated by residual and/or unmeasured confounding alone.
机译:解释变量中的测量误差和无法测量的混杂因素会在流行病学研究中引起相当大的问题。众所周知,在某些条件下,曝光变量中的非差分测量误差会导致零值偏差。混杂因素中的测量误差会导致残留混杂,但这不是一个直接的问题,而且尚不清楚偏向会指向哪个方向。无法衡量的混杂因素进一步使事情复杂化。已经讨论了由于残留或未经测量的混杂而可能发生的暴露影响估计中的偏差量。在本文中,作者使用模拟研究和逻辑回归分析来研究表观暴露-结果关联的大小,这种关联实际上可能在暴露对结果无因果关系时发生。作者考虑了两个具有正态分布的暴露情况和两个或四个正态分布的混杂因素。当混杂因素不相关时,随着残留和未测混杂因素的增加,暴露效果估计中的偏差也会增加。对于相关的混杂因素,模式更为复杂。在合理的假设下,观察流行病学研究中经常报道的影响大小可通过仅残留和/或无法测量的混杂因素来产生。

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