Mixtures of multivariate restricted skew-normal factor analyzer models in a Bayesian framework

被引:0
|
作者
Mohsen Maleki
Darren Wraith
机构
[1] Shiraz University,Department of Statistics, College of Science
[2] Queensland University of Technology (QUT),Institute of Health and Biomedical Innovation (IHBI)
来源
Computational Statistics | 2019年 / 34卷
关键词
Bayesian analysis; Gibbs sampling; Mixture of factor analysis model; Restricted skew-normal distribution;
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学科分类号
摘要
The mixture of factor analyzers (MFA) model, by reducing the number of free parameters through its factor-analytic representation of the component covariance matrices, is an important statistical model to identify hidden or latent groups in high dimensional data. Recent approaches to extend the approach to skewed data or skewness in the latent groups have been examined in a frequentist setting where there are some known computational limitations. For these reasons we consider a Bayesian approach to the restricted skew-normal mixtures of factor analysis MFA model. We examine the performance and flexibility of the approach on real datasets and illustrate some of the computational advantages in a missing data setting.
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页码:1039 / 1053
页数:14
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