Maximum approximate likelihood estimation in accelerated failure time model for interval‐censored data

Author:

Guan Zhong1ORCID

Affiliation:

1. Department of Mathematical Sciences Indiana University South Bend South Bend Indiana

Abstract

AbstractThe approximate Bernstein polynomial model, a mixture of beta distributions, is applied to obtain maximum likelihood estimates of the regression coefficients, the baseline density and the survival functions in an accelerated failure time model based on interval censored data including current status data. The estimators of the regression coefficients and the underlying baseline density function are shown to be consistent with almost parametric rates of convergence under some conditions for uncensored and/or interval censored data. Simulation shows that the proposed method is better than its competitors. The proposed method is illustrated by fitting the Breast Cosmetic and the HIV infection time data using the accelerated failure time model.

Publisher

Wiley

Subject

Statistics and Probability,Epidemiology

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