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Cure rate model with bivariate interval censored data
Authors:Yang-Jin Kim
Affiliation:Department of Statistics, Sookmyung Women's University, Seoul, Korea
Abstract:A mixture model is proposed to analyze a bivariate interval censored data with cure rates. There exist two types of association related with bivariate failure times and bivariate cure rates, respectively. A correlation coefficient is adopted for the association of bivariate cure rates and a copula function is applied for bivariate survival times. The conditional expectation of unknown quantities attributable to interval censored data and cure rates are calculated in the E-step in ES (Expectation-Solving algorithm) and the marginal estimates and the association measures are estimated in the S-step through a two-stage procedure. A simulation study is performed to evaluate the suggested method and a real data from HIV patients is analyzed as a real data example.
Keywords:Association  Bivariate interval censored data  Copula  Cure rate model  ES algorithm  Pseudo-likelihood
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