Multivariate Survival Models with a Mixture of Positive Stable Frailties |
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Authors: | Ravishanker Nalini Dey Dipak K. |
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Affiliation: | (1) Department of Statistics, University of Connecticut, Storrs, CT, 06269;(2) Department of Statistics, University of Connecticut, Storrs, CT, 06269 |
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Abstract: | In this paper, we describe models for dependent multivariate survival data using finite mixtures of positive stable frailty distributions. We investigate the cross-ratio function as a local measure of association. We estimate the parameters in the stable mixture together with the parameters of the (conditional) proportional hazards model in a Bayesian framework using Markov chain Monte Carlo algorithms. We illustrate the methodology using data on kidney infections. |
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Keywords: | dependent survival data frailty distribution infinite variance stable distribution local association proportional hazards model |
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