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Original Articles

Bayesian Proportional Odds Models for Analyzing Current Status Data: Univariate, Clustered, and Multivariate

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Pages 1171-1181 | Received 17 Jun 2010, Accepted 15 Feb 2011, Published online: 19 Apr 2011
 

Abstract

Current status data commonly arise in many fields such as epidemiological studies and cross-sectional tumorigenicity studies. In this article, we propose a semiparametric Bayesian approach for analyzing current status data with the proportional odds model. The use of monotone splines for the baseline odds function and a novel data augmentation with Poisson latent variables enable simple updating all of the parameters in the posterior computation. The proposed approach shows good performance and is compared with the approach in Wang and Dunson (Citation2010) in a simulation study. We also generalize the proposed approach to analyze clustered and multivariate current status data under the frailty proportional odds models.

Mathematics Subject Classification:

Acknowledgment

The authors wish to thank one reviewer particularly for his/her critical and constructive comments that greatly improved the original presentation.

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