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Analysis of incomplete data using inverse probability weighting and doubly robust estimators

机译:用逆概率加权和双稳健估计分析不完全数据

摘要

This article reviews inverse probability weighting methods and doubly robust estimation methods for the analysis of incomplete data sets. We first consider methods for estimating a population mean when the outcome is missing at random, in the sense that measured covariates can explain whether or not the outcome is observed. We then sketch the rationale of these methods and elaborate on their usefulness in the presence of influential inverse weights. We finally outline how to apply these methods in a variety of settings, such as for fitting regression models with incomplete outcomes or covariates, emphasizing the use of standard software programs.
机译:本文介绍了逆概率加权方法和用于分析不完整数据集的双稳健估计方法。我们首先考虑在随机缺失结果时估计总体均值的方法,因为所测量的协变量可以解释是否观察到结果。然后,我们概述了这些方法的原理,并详细说明了在有影响的权重存在的情况下它们的有效性。最后,我们概述了如何在各种设置中应用这些方法,例如用于拟合具有不完整结果或协变量的回归模型,强调使用标准软件程序。

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