Robust modeling using non-elliptically contoured multivariate t distributions
Models based on multivariate t distributions are widely applied to analyze data with heavy tails. However, all the marginal distributions of the multivariate t distributions are restricted to have the same degrees of freedom, making these models unable to describe different marginal heavy-tailedness...
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| Published in | Journal of statistical planning and inference Vol. 177; pp. 50 - 63 |
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| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
Elsevier B.V
01.10.2016
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0378-3758 1873-1171 |
| DOI | 10.1016/j.jspi.2016.04.004 |
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| Abstract | Models based on multivariate t distributions are widely applied to analyze data with heavy tails. However, all the marginal distributions of the multivariate t distributions are restricted to have the same degrees of freedom, making these models unable to describe different marginal heavy-tailedness. We generalize the traditional multivariate t distributions to non-elliptically contoured multivariate t distributions, allowing for different marginal degrees of freedom. We apply the non-elliptically contoured multivariate t distributions to three widely-used models: the Heckman selection model with different degrees of freedom for selection and outcome equations, the multivariate Robit model with different degrees of freedom for marginal responses, and the linear mixed-effects model with different degrees of freedom for random effects and within-subject errors. Based on the normal mixture representation of our t distribution, we propose efficient Bayesian inferential procedures for the model parameters based on data augmentation and parameter expansion. We show via simulation studies and real data examples that the conclusions are sensitive to the existence of different marginal heavy-tailedness. |
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| AbstractList | Models based on multivariate t distributions are widely applied to analyze data with heavy tails. However, all the marginal distributions of the multivariate t distributions are restricted to have the same degrees of freedom, making these models unable to describe different marginal heavy-tailedness. We generalize the traditional multivariate t distributions to non-elliptically contoured multivariate t distributions, allowing for different marginal degrees of freedom. We apply the non-elliptically contoured multivariate t distributions to three widely-used models: the Heckman selection model with different degrees of freedom for selection and outcome equations, the multivariate Robit model with different degrees of freedom for marginal responses, and the linear mixed-effects model with different degrees of freedom for random effects and within-subject errors. Based on the normal mixture representation of our t distribution, we propose efficient Bayesian inferential procedures for the model parameters based on data augmentation and parameter expansion. We show via simulation studies and real data examples that the conclusions are sensitive to the existence of different marginal heavy-tailedness. |
| Author | Ding, Peng Jiang, Zhichao |
| Author_xml | – sequence: 1 givenname: Zhichao surname: Jiang fullname: Jiang, Zhichao organization: School of Mathematical Sciences, Peking University, Bejing 100871, China – sequence: 2 givenname: Peng surname: Ding fullname: Ding, Peng email: pengdingpku@berkeley.edu organization: Department of Statistics, University of California, Berkeley, CA 94720, USA |
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| CitedBy_id | crossref_primary_10_1002_bimj_70019 crossref_primary_10_1002_sys_21711 crossref_primary_10_1080_02331888_2019_1624964 crossref_primary_10_1007_s11222_022_10182_3 crossref_primary_10_1016_j_csda_2020_106930 crossref_primary_10_1016_j_jmva_2017_09_009 |
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| Keywords | 99-00 Robit model 00-01 Sample selection Heckman selection model Data augmentation Heavy-tailedness Linear mixed-effects model Parameter expansion |
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| SubjectTerms | Data augmentation Heavy-tailedness Heckman selection model Linear mixed-effects model Parameter expansion Robit model Sample selection |
| Title | Robust modeling using non-elliptically contoured multivariate t distributions |
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