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Original Articles

Shared frailty models with baseline generalized Pareto distribution

ORCID Icon, & ORCID Icon
Pages 4425-4447 | Received 17 Jun 2017, Accepted 08 Jul 2018, Published online: 10 Nov 2018
 

Abstract

In this article, we have considered three different shared frailty models under the assumption of generalized Pareto Distribution as baseline distribution. Frailty models have been used in the survival analysis to account for the unobserved heterogeneity in an individual risks to disease and death. These three frailty models are with gamma frailty, inverse Gaussian frailty and positive stable frailty. Then we introduce the Bayesian estimation procedure using Markov chain Monte Carlo (MCMC) technique to estimate the parameters. We applied these three models to a kidney infection data and find the best fitted model for kidney infection data. We present a simulation study to compare true value of the parameters with the estimated values. Model comparison is made using Bayesian model selection criterion and a well-fitted model is suggested for the kidney infection data.

Acknowledgments

We thank the referee for the valuable suggestions and comments which improved the earlier version of the manuscript.

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