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Published on: October 23, 2020
Regression analysis of current status data in the presence of a cured subgroup and dependent censoring
Yeqian Liu1, Tao Hu2, Jianguo Sun3
1Department of Mathematical Sciences, Middle Tennessee State University, Murfreesboro, TN, USA.
Abstract:
This paper discusses regression analysis of current status data, a type of failure time data where each study subject is observed only once, in the presence of dependent censoring. Furthermore, there may exist a cured subgroup, meaning that a proportion of study subjects are not susceptible to the failure event of interest. For the problem, we develop a sieve maximum likelihood estimation approach with the use of latent variables and Bernstein polynomials. For the determination of the proposed estimators, an EM algorithm is developed and the asymptotic properties of the estimators are established. Extensive simulation studies are conducted and indicate that the proposed method works well for practical situations. A motivating application from a tumorigenicity experiment is also provided.
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