A hierarchical Bayesian regression model for the uncertain functional constraint using screened scale mixtures of Gaussian distributions

被引:5
作者
Kim, Hea-Jung [1 ]
Choi, Taeryon [2 ]
Lee, Suyeon [2 ]
机构
[1] Dongguk Univ, Dept Stat, Seoul, South Korea
[2] Korea Univ, Dept Stat, Seoul, South Korea
基金
新加坡国家研究基金会;
关键词
elliptically contoured distribution; hierarchical Bayesian model; Markov chain Monte Carlo; rectangular screened scale mixtures; uncertain constraint; SKEWED DISTRIBUTIONS; SHAPE MIXTURES; INFERENCE; SUBJECT;
D O I
10.1080/02331888.2015.1100616
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
This paper considers a hierarchical Bayesian analysis of regression models using a class of Gaussian scale mixtures. This class provides a robust alternative to the common use of the Gaussian distribution as a prior distribution in particular for estimating the regression function subject to uncertainty about the constraint. For this purpose, we use a family of rectangular screened multivariate scale mixtures of Gaussian distribution as a prior for the regression function, which is flexible enough to reflect the degrees of uncertainty about the functional constraint. Specifically, we propose a hierarchical Bayesian regression model for the constrained regression function with uncertainty on the basis of three stages of a prior hierarchy with Gaussian scale mixtures, referred to as a hierarchical screened scale mixture of Gaussian regression models (HSMGRM). We describe distributional properties of HSMGRM and an efficient Markov chain Monte Carlo algorithm for posterior inference, and apply the proposed model to real applications with constrained regression models subject to uncertainty.
引用
收藏
页码:350 / 376
页数:27
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