JOURNAL ARTICLE

Bayesian Semiparametric Isotonic Regression for Count Data

David B. Dunson

Year: 2005 Journal:   Journal of the American Statistical Association Vol: 100 (470)Pages: 618-627

Abstract

This article proposes a semiparametric Bayesian approach for inference on an unknown isotonic regression function, f(x), characterizing the relationship between a continuous predictor, X, and a count response variable, Y, adjusting for covariates, Z. A Dirichlet process mixture of Poisson distributions is used to avoid parametric assumptions on the conditional distribution of Y given X and Z. Then, to also avoid parametric assumptions on f(x), a novel prior formulation is proposed that enforces the nondecreasing constraint and assigns positive prior probability to the null hypothesis of no association. Through the use of carefully tailored hyperprior distributions, we allow for borrowing of information across different regions of X in estimating f(x) and in assessing hypotheses about local increases in the function. Due to conjugacy properties, posterior computation is straightforward using a Markov chain Monte Carlo algorithm. The methods are illustrated using data from an epidemiologic study of sleep problems and obesity.

Keywords:
Mathematics Isotonic regression Covariate Semiparametric regression Bayesian probability Dirichlet distribution Statistics Markov chain Monte Carlo Bayesian linear regression Conditional probability distribution Applied mathematics Count data Parametric statistics Bayesian inference Econometrics Poisson distribution

Metrics

53
Cited By
5.75
FWCI (Field Weighted Citation Impact)
38
Refs
0.96
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Bayesian Methods and Mixture Models
Physical Sciences →  Computer Science →  Artificial Intelligence
Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability

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