JOURNAL ARTICLE

Bayesian Nonparametric Bivariate Survival Regression for Current Status Data

Giorgio PaulonPeter MüllerVíctor G. Sal y Rosas

Year: 2022 Journal:   Bayesian Analysis Vol: 19 (1)   Publisher: International Society for Bayesian Analysis

Abstract

We consider Bayesian nonparametric inference for event time distributions based on current status data. We show that under dependent censoring conventional mixture priors, including the popular Dirichlet process mixture prior, lead to biologically uninterpretable results as they unnaturally skew the probability mass for the event times toward the extremes of the observed data. Simple assumptions on dependent censoring can fix the problem. We then extend the discussion to bivariate current status data with partial ordering of the two outcomes. In addition to dependent censoring, we also exploit some minimal known structure relating the two event times. We design a Markov chain Monte Carlo algorithm for posterior simulation. Applied to a recurrent infection study, the method provides novel insights into how symptoms-related hospital visits are affected by covariates.

Keywords:
Censoring (clinical trials) Bivariate analysis Covariate Bayesian probability Markov chain Monte Carlo Statistics Econometrics Dirichlet process Computer science Nonparametric statistics Mathematics

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2
Cited By
0.39
FWCI (Field Weighted Citation Impact)
47
Refs
0.58
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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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