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条件高斯混合模型在项目无应答下的半参数插补

Semiparametric imputation using conditional Gaussian mixture models under item nonresponse.

机构信息

Department of Information Systems, Statistics and Management Science, University of Alabama, Tuscaloosa, Alabama, USA.

Department of Statistics, Iowa State University, Ames, Iowa, USA.

出版信息

Biometrics. 2022 Mar;78(1):227-237. doi: 10.1111/biom.13410. Epub 2020 Dec 11.

Abstract

Imputation is a popular technique for handling item nonresponse. Parametric imputation is based on a parametric model for imputation and is not robust against the failure of the imputation model. Nonparametric imputation is fully robust but is not applicable when the dimension of covariates is large due to the curse of dimensionality. Semiparametric imputation is another robust imputation based on a flexible model where the number of model parameters can increase with the sample size. In this paper, we propose a new semiparametric imputation based on a more flexible model assumption than the Gaussian mixture model. In the proposed mixture model, we assume a conditional Gaussian model for the study variable given the auxiliary variables, but the marginal distribution of the auxiliary variables is not necessarily Gaussian. The proposed mixture model is more flexible and achieves a better approximation than the Gaussian mixture models. The proposed method is applicable to high-dimensional covariate problem by including a penalty function in the conditional log-likelihood function. The proposed method is applied to the 2017 Korean Household Income and Expenditure Survey conducted by Statistics Korea.

摘要

插补是处理项目无应答的一种常用技术。参数插补基于插补的参数模型,对插补模型的失效并不稳健。非参数插补是完全稳健的,但由于维度的诅咒,当协变量的维度很大时,它不适用。半参数插补是另一种基于灵活模型的稳健插补,其中模型参数的数量可以随样本量增加而增加。在本文中,我们提出了一种新的基于比高斯混合模型更灵活的模型假设的半参数插补。在提出的混合模型中,我们假设研究变量给定辅助变量的条件高斯模型,但辅助变量的边缘分布不一定是高斯的。与高斯混合模型相比,所提出的混合模型更灵活,并且能够实现更好的逼近。通过在条件对数似然函数中包含惩罚函数,所提出的方法适用于高维协变量问题。该方法应用于由韩国统计厅进行的 2017 年韩国家庭收入和支出调查。

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