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首页> 外文期刊>American Journal of Epidemiology >You Can't Drive a Car With Only Three Wheels
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You Can't Drive a Car With Only Three Wheels

机译:只有三个轮子驾驶汽车

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摘要

Authors aiming to estimate causal effects from observational data frequently discuss 3 fundamental identifiability assumptions for causal inference: exchangeability, consistency, and positivity. However, too often, studies fail to acknowledge the importance of measurement bias in causal inference. In the presence of measurement bias, the aforementioned identifiability conditions are not sufficient to estimate a causal effect. The most fundamental requirement for estimating a causal effect is knowing who is truly exposed and unexposed. In this issue of the Journal, Caniglia et al. (Am J Epidemiol. 2019;188(9):1674-1681) present a thorough discussion of methodological challenges when estimating causal effects in the context of research on distance to obstetrical care. Their article highlights empirical strategies for examining nonexchangeability due to unmeasured confounding and selection bias and potential violations of the consistency assumption. In addition to the important considerations outlined by Caniglia et al., authors interested in estimating causal effects from observational data should also consider implementing quantitative strategies to examine the impact of misclassification. The objective of this commentary is to emphasize that you can't drive a car with only three wheels, and you also cannot estimate a causal effect in the presence of exposure misclassification bias.
机译:旨在估算观测数据的因果效应的作者频繁讨论了因果推理的3个基本可辨率假设:交换性,一致性和积极性。然而,往往通常,研究无法承认测量偏差在因果推断中的重要性。在测量偏差存在下,上述可识别性条件不足以估计因果效应。估计因果效应最基本的要求是知道谁真正暴露和未暴露。在这个期刊上,Caniglia等。 (AM JIDEMIOL。2019年; 2019年; 188(9):1674-1681)在估算对产科护理的距离背景下的因果效应时,对方法论挑战进行了彻底讨论。他们的文章突出了审查非流化娱乐性的经验策略,因为未测量的混淆和选择偏见以及潜在的持续性假设。除了Caniglia等人概述的重要考虑因素,有兴趣估算来自观察数据的因果效应的作者还应考虑实施定量策略以检查错误分类的影响。这项评论的目标是强调,只有三个轮子无法驾驶汽车,并且您也无法估计在暴露错误分类偏差的情况下的因果效果。

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