Linear regression analysis of survival data with missing censoring indicators

被引:0
|
作者
Qihua Wang
Gregg E. Dinse
机构
[1] Yunnan University,Department of Mathematics and Statistics
[2] Chinese Academy of Science,Academy of Mathematics and Systems Science
[3] National Institute of Environmental Health Sciences,Biostatistics Branch
[4] Research Triangle Park,undefined
来源
Lifetime Data Analysis | 2011年 / 17卷
关键词
Asymptotic normality; Censoring indicator; Imputation; Inverse probability weighting; Least squares; Missing at random; Regression calibration;
D O I
暂无
中图分类号
学科分类号
摘要
Linear regression analysis has been studied extensively in a random censorship setting, but typically all of the censoring indicators are assumed to be observed. In this paper, we develop synthetic data methods for estimating regression parameters in a linear model when some censoring indicators are missing. We define estimators based on regression calibration, imputation, and inverse probability weighting techniques, and we prove all three estimators are asymptotically normal. The finite-sample performance of each estimator is evaluated via simulation. We illustrate our methods by assessing the effects of sex and age on the time to non-ambulatory progression for patients in a brain cancer clinical trial.
引用
收藏
页码:256 / 279
页数:23
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