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A New Procedure to Test Mediation With Missing Data Through Nonparametric Bootstrapping and Multiple Imputation

机译:通过非参数自举和多重插补测试丢失数据的中介的新过程

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摘要

This article proposes a new procedure to test mediation with the presence of missing data by combining nonparametric bootstrapping with multiple imputation (MI). This procedure performs MI first and then bootstrapping for each imputed data set. The proposed procedure is more computationally efficient than the procedure that performs bootstrapping first and then MI for each bootstrap sample. The validity of the procedure is evaluated using a simulation study under different sample size, missing data mechanism, missing data proportion, and shape of distribution conditions. The result suggests that the proposed procedure performs comparably to the procedure that combines bootstrapping with full information maximum likelihood under most conditions. However, caution needs to be taken when using this procedure to handle missing not-at-random or nonnormal data.
机译:本文提出了一种新程序,通过将非参数自举与多重插补(MI)结合使用来测试是否存在丢失数据。此过程首先为每个估算的数据集执行MI,然后进行引导。与为每个引导程序样本先执行自举然后执行MI的过程相比,所提出的过程在计算效率上更高。在不同样本量,缺失数据机制,缺失数据比例和分布条件的形状下,通过模拟研究评估了该程序的有效性。结果表明,所提出的程序在大多数情况下的性能与将自举与完整信息最大似然性相结合的程序相当。但是,在使用此过程来处理丢失的非随机数据或非正常数据时,需要格外小心。

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