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A review of instrumental variable estimators for Mendelian randomization

机译:孟德利安随机化仪器变量估算述评

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摘要

>Instrumental variable analysis is an approach for obtaining causal inferences on the effect of an exposure (risk factor) on an outcome from observational data. It has gained in popularity over the past decade with the use of genetic variants as instrumental variables, known as Mendelian randomization. An instrumental variable is associated with the exposure, but not associated with any confounder of the exposure–outcome association, nor is there any causal pathway from the instrumental variable to the outcome other than via the exposure. Under the assumption that a single instrumental variable or a set of instrumental variables for the exposure is available, the causal effect of the exposure on the outcome can be estimated. There are several methods available for instrumental variable estimation; we consider the ratio method, two-stage methods, likelihood-based methods, and semi-parametric methods. Techniques for obtaining statistical inferences and confidence intervals are presented. The statistical properties of estimates from these methods are compared, and practical advice is given about choosing a suitable analysis method. In particular, bias and coverage properties of estimators are considered, especially with weak instruments. Settings particularly relevant to Mendelian randomization are prioritized in the paper, notably the scenario of a continuous exposure and a continuous or binary outcome.
机译:乐器变量分析是一种方法,用于获得曝光(风险因素)对来自观察数据的结果的因果推断。过去十年来,它在过去的几十年中获得了遗传变体作为仪器变量,称为孟德尔随机化。乐器变量与曝光有关,但与曝光结果关联的任何混淆相关联,也没有从仪器变量到除了通过曝光之外的结果的因果途径。在假设单个乐器变量或曝光的一组仪器变量可用时,可以估计曝光对结果的因果效应。有几种可用于乐器变量估计的方法;我们考虑比率方法,两阶段方法,基于可能性的方法和半参数方法。提出了获得统计推论和置信区间的技术。比较了这些方法的估计的统计特性,并对选择合适的分析方法给出了实际建议。特别地,考虑估计器的偏差和覆盖特性,尤其是弱乐器。与孟德尔随机化特别相关的设置在纸上优先考虑,特别是连续曝光和连续或二元结果的场景。

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