Cox regression of clustered event times with covariates missing not at random

Motivated by a recent tuberculosis (TB) study, this paper is concerned with covariates missing not at random (MNAR) and models the potential intracluster correlation by a frailty. We consider the regression analysis of right-censored event times from clustered subjects under a Cox proportional hazar...

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Published inScandinavian journal of statistics Vol. 46; no. 4; pp. 1315 - 1346
Main Authors Liu, Li, Liu, Yanyan, Xiong, Yi, Hu, X. Joan
Format Journal Article
LanguageEnglish
Published Oxford Wiley 01.12.2019
Blackwell Publishing Ltd
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Abstract Motivated by a recent tuberculosis (TB) study, this paper is concerned with covariates missing not at random (MNAR) and models the potential intracluster correlation by a frailty. We consider the regression analysis of right-censored event times from clustered subjects under a Cox proportional hazards frailty model and present the semiparametric maximum likelihood estimator (SPMLE) of the model parameters. An easy-to-implement pseudo-SPMLE is then proposed to accommodate more realistic situations using readily available supplementary information on the missing covariates. Algorithms are provided to compute the estimators and their consistent variance estimators. We demonstrate that both the SPMLE and the pseudo-SPMLE are consistent and asymptotically normal by the arguments based on the theory of modern empirical processes. The proposed approach is examined numerically via simulation and illustrated with an analysis of the motivating TB study data.
AbstractList Motivated by a recent tuberculosis (TB) study, this paper is concerned with covariates missing not at random (MNAR) and models the potential intracluster correlation by a frailty. We consider the regression analysis of right-censored event times from clustered subjects under a Cox proportional hazards frailty model and present the semiparametric maximum likelihood estimator (SPMLE) of the model parameters. An easy-to-implement pseudo-SPMLE is then proposed to accommodate more realistic situations using readily available supplementary information on the missing covariates. Algorithms are provided to compute the estimators and their consistent variance estimators. We demonstrate that both the SPMLE and the pseudo-SPMLE are consistent and asymptotically normal by the arguments based on the theory of modern empirical processes. The proposed approach is examined numerically via simulation and illustrated with an analysis of the motivating TB study data.
Author Xiong, Yi
Liu, Li
Liu, Yanyan
Hu, X. Joan
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Snippet Motivated by a recent tuberculosis (TB) study, this paper is concerned with covariates missing not at random (MNAR) and models the potential intracluster...
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SubjectTerms Algorithms
Computer simulation
Empirical analysis
Estimating techniques
extended EM algorithm
frailty model
likelihood‐based estimation
Maximum likelihood estimators
ORIGINAL ARTICLE
Parameter estimation
Regression analysis
semiparametric regression
Tuberculosis
Title Cox regression of clustered event times with covariates missing not at random
URI https://www.jstor.org/stable/26840399
https://onlinelibrary.wiley.com/doi/abs/10.1111%2Fsjos.12409
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