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Robust Estimation for Panel Count Data with Informative Observation Times and Censoring Times

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Publisher Springer
Date 2018 Dec 14
PMID 30542803
Citations 2
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Abstract

We consider the semiparametric regression of panel count data occurring in longitudinal follow-up studies that concern occurrence rate of certain recurrent events. The analysis of panel count data involves two processes, i.e, a recurrent event process of interest and an observation process controlling observation times. However, the model assumptions of existing methods, such as independent censoring time and Poisson assumption, are restrictive and questionable. In this paper, we propose new joint models for panel count data by considering both informative observation times and censoring times. The asymptotic normality of the proposed estimators are established. Numerical results from simulation studies and a real data example show the advantage of the proposed method.

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Efficient Multiple Imputation for Sensitivity Analysis of Recurrent Events Data with Informative Censoring.

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PMID: 35601027 PMC: 9119645. DOI: 10.1080/19466315.2020.1819403.


Semiparametric Regression Analysis of Panel Count Data: A Practical Review.

Chiou S, Huang C, Xu G, Yan J Int Stat Rev. 2021; 87(1):24-43.

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