The Adjustment of Covariates in Cox’s Model under Case-Cohort Design

Author:

Rong Guocai1,Tang Luwei2,Luo Wenting2,Li Qing1,Deng Lifeng1ORCID

Affiliation:

1. College of Mathematics and Systems Science, Shandong University of Science and Technology, Qingdao 266590, Shandong, China

2. School of Mathematics and Statistics, Nanning Normal University, Nanning 530001, Guangxi, China

Abstract

Case-cohort design is a biased sampling method. Due to its cost-effective and theoretical significance, this design has extensive application value in many large cohort studies. The case-cohort data includes a subcohort sampled randomly from the entire cohort and all the failed subjects outside the subcohort. In this paper, the adjustment for the distorted covariates is considered to case-cohort data in Cox’s model. According to the existing adjustable methods of distorted covariates for linear and nonlinear models, we propose estimating the distorting functions by nonparametrically regressing the distorted covariates on the distorting factors; then, the estimators for the parameters are obtained using the estimated covariates. The proof of consistency and being asymptotically normal is completed. For calculating the maximum likelihood estimates of the regression coefficients subject in Cox’s model, a minorization-maximization (MM) algorithm is developed. Simulation studies are performed to compare the estimations with the covariates undistorted, distorted, and adjusted to illustrate the proposed methods.

Funder

Shandong University of Science and Technology

Publisher

Hindawi Limited

Subject

Multidisciplinary,General Computer Science

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