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Bias Formulas for Estimating Direct and Indirect Effects When Unmeasured Confounding Is Present

机译:存在无法衡量的混淆时用于估计直接和间接影响的偏差公式

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摘要

Mediation analysis examines the influence of intermediate factors in the causal pathway between an exposure and an outcome. It yields estimates of the direct effect of the exposure on the outcome and of the indirect effect through the intermediate variable. Both estimates can be biased if the relationship between the mediator and the outcome is confounded. In this article, we study the effect of unmeasured confounding on direct and indirect effect estimates for a continuous mediator and an outcome that may be either binary, count, or continuous. We formulate the effect of the confounder on the intermediate and on the outcome directly in regression models, which makes the formulas intuitive to use by applied users. The formulas are derived under the assumption that the confounder follows a normal distribution. In simulations, the formulas for a linear response model performed well, also as it did when the unmeasured confounder was binary. For a rare binary outcome, the formulas for logistic regression performed well if the unmeasured confounder followed a normal distribution, but for a binary confounder the bias in the direct effect was overcorrected. We applied the formulas to data from a case-control study (Leiden Thrombophilia Study) on risk factors for venous thrombosis. This showed that unmeasured confounding can severely bias the estimates of direct and indirect effects.
机译:中介分析检查了中间因素对暴露与结果之间因果关系的影响。它可以估算出暴露对结果的直接影响以及通过中间变量得出的间接影响。如果调解人与结果之间的关系不明确,则这两种估计都可能会产生偏差。在本文中,我们研究了连续中介者对直接和间接影响估计的未测量混杂影响,其结果可能是二进制,计数或连续的。我们在回归模型中直接公式化了混杂因素对中间变量和结果的影响,这使得公式可以被应用用户直观地使用。该公式是在假设混杂因素服从正态分布的前提下得出的。在仿真中,线性响应模型的公式效果很好,就像在未测混杂因子为二进制时一样。对于罕见的二进制结果,如果未测混杂因素服从正态分布,则logistic回归公式的效果很好,但是对于二进制混杂因素,直接效应的偏差被过度校正。我们将这些公式应用于病例对照研究(Leiden血栓形成症研究)中有关静脉血栓形成危险因素的数据。这表明,无法衡量的混杂会严重影响直接和间接影响的估计。

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