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Shared frailty models based on reversed hazard rate for modified inverse Weibull distribution as baseline distribution
Authors:David D. Hanagal  Arvind Pandey
Affiliation:Department of Statistics, University of Pune, Pune, India
Abstract:The unknown or unobservable risk factors in the survival analysis cause heterogeneity between individuals. Frailty models are used in the survival analysis to account for the unobserved heterogeneity in individual risks to disease and death. To analyze the bivariate data on related survival times, the shared frailty models were suggested. The most common shared frailty model is a model in which frailty act multiplicatively on the hazard function. In this paper, we introduce the shared gamma frailty model and the inverse Gaussian frailty model with the reversed hazard rate. We introduce the Bayesian estimation procedure using Markov chain Monte Carlo (MCMC) technique to estimate the parameters involved in the model. We present a simulation study to compare the true values of the parameters with the estimated values. We also apply the proposed models to the Australian twin data set and a better model is suggested.
Keywords:Bayesian estimation  Gamma frailty  Inverse Gaussian frailty  MCMC  Modified inverse Weibull distribution  Reversed hazard rate.
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