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A weighting approach to causal effects and additive interaction in case-control studies: marginal structural linear odds models.

机译:案例对照研究中因果效应和加性相互作用的加权方法:边际结构线性比值模型。

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Estimates of additive interaction from case-control data are often obtained by logistic regression; such models can also be used to adjust for covariates. This approach to estimating additive interaction has come under some criticism because of possible misspecification of the logistic model: If the underlying model is linear, the logistic model will be misspecified. The authors propose an inverse probability of treatment weighting approach to causal effects and additive interaction in case-control studies. Under the assumption of no unmeasured confounding, the approach amounts to fitting a marginal structural linear odds model. The approach allows for the estimation of measures of additive interaction between dichotomous exposures, such as the relative excess risk due to interaction, using case-control data without having to rely on modeling assumptions for the outcome conditional on the exposures and covariates. Rather than using conditional models for the outcome, models are instead specified for the exposures conditional on the covariates. The approach is illustrated by assessing additive interaction between genetic and environmental factors using data from a case-control study.
机译:通常通过逻辑回归从病例对照数据估算加性相互作用。这样的模型也可以用于调整协变量。这种估计加性相互作用的方法受到了某些批评,因为逻辑模型可能存在错误指定:如果基础模型是线性的,则逻辑模型将被错误指定。作者提出了在案例对照研究中针对因果效应和加性相互作用的治疗加权方法的逆概率。在没有不可测混杂的假设下,该方法相当于拟合边际结构线性比值模型。该方法允许使用病例对照数据来估计二分暴露之间的加性相互作用的度量,例如由于相互作用引起的相对过度风险,而不必依赖暴露和协变量条件下的结果的建模假设。而不是使用结果的条件模型,而是为条件指定协变量的暴露模型。通过使用病例对照研究的数据评估遗传因素与环境因素之间的加性相互作用来说明该方法。

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