Title of article
Bayesian analysis of a Tobit quantile regression model
Author/Authors
Yu، نويسنده , , Keming and Stander، نويسنده , , Julian، نويسنده ,
Issue Information
دوفصلنامه با شماره پیاپی سال 2007
Pages
17
From page
260
To page
276
Abstract
This paper develops a Bayesian framework for Tobit quantile regression. Our approach is organized around a likelihood function that is based on the asymmetric Laplace distribution, a choice that turns out to be natural in this context. We discuss families of prior distributions on the quantile regression vector that lead to proper posterior distributions with finite moments. We show how the posterior distribution can be sampled and summarized by Markov chain Monte Carlo methods. A method for comparing alternative quantile regression models is also developed and illustrated. The techniques are illustrated with both simulated and real data. In particular, in an empirical comparison, our approach out-performed two other common classical estimators.
Keywords
Tobit model , Asymmetric Laplace distribution , Bayes factor , Bayesian inference , Bayesian model comparison , Quantile regression , Markov chain Monte Carlo methods
Journal title
Journal of Econometrics
Serial Year
2007
Journal title
Journal of Econometrics
Record number
1559135
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