Robust mixture regression modeling based on two-piece scale mixtures of normal distributions

被引:0
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作者
Atefeh Zarei
Zahra Khodadadi
Mohsen Maleki
Karim Zare
机构
[1] Islamic Azad University,Department of Statistics, Marvdasht Branch
[2] University of Isfahan,Department of Statistics, Faculty of Mathematics and Statistics
关键词
ECME algorithm; Mixture regression models; Penalized likelihood; Two-piece scale mixtures of normal distributions; 62H30; 62J20; 62E17; 62F10; 62J05;
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学科分类号
摘要
The inference of mixture regression models (MRM) is traditionally based on the normal (symmetry) assumption of component errors and thus is sensitive to outliers or symmetric/asymmetric lightly/heavy-tailed errors. To deal with these problems, some new mixture regression models have been proposed recently. In this paper, a general class of robust mixture regression models is presented based on the two-piece scale mixtures of normal (TP-SMN) distributions. The proposed model is so flexible that can simultaneously accommodate asymmetry and heavy tails. The stochastic representation of the proposed model enables us to easily implement an EM-type algorithm to estimate the unknown parameters of the model based on a penalized likelihood. In addition, the performance of the considered estimators is illustrated using a simulation study and a real data example.
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页码:181 / 210
页数:29
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