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A new double hot-deck imputation method for missing values under boundary conditions

机译:边界条件下缺失值的新双热躺椅归责方法

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摘要

In surveys, logical boundaries among variables or among waves of surveys make imputation of missing values complicated. We propose a new regression-based multiple imputation method to deal with survey non-responses with two-sided logical boundaries. This imputation method automatically satisfies the boundary conditions without an additional acceptance/rejection procedure and utilizes the boundary information to derive an imputed value and to determine the suitability of the imputed value. Simulation results show that our new imputation method outperforms the existing imputation methods for both mean and quantile estimations regardless of missing rates, error distributions, and missing-mechanisms. We apply our method to impute the self-reported variable "years of smoking" in successive health screenings of Koreans.
机译:在调查中,变量或调查波之间的逻辑边界使丢失值的归咎复杂。我们提出了一种基于新的回归的多个归因方法,可处理具有双面逻辑边界的调查非响应。该撤销方法自动满足边界条件而没有额外的接受/抑制过程,并利用边界信息来导出避税的值并确定所欠值的适用性。仿真结果表明,无论缺失速率,错误分布和缺少机制如何,我们的新撤销方法都优于均值和分位数估计的现有估算方法。我们在韩国人的连续健康筛查中应用我们的方法来削弱自我报告的变量“减少吸烟”。

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