Efficient estimation for additive hazards regression with bivariate current status data

被引:0
|
作者
XingWei Tong
Tao Hu
JianGuo Sun
机构
[1] Beijing Normal University,School of Mathematical Sciences
[2] Capital Normal University,School of Mathematical Sciences
[3] Jilin University,School of Mathematics
[4] University of Missouri,Department of Statistics
来源
Science China Mathematics | 2012年 / 55卷
关键词
bivariate current status data; copula model; counting processes; efficient estimation; joint survival function; 62N01; 62F12;
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摘要
This paper discusses efficient estimation for the additive hazards regression model when only bivariate current status data are available. Current status data occur in many fields including demographical studies and tumorigenicity experiments (Keiding, 1991; Sun, 2006) and several approaches have been proposed for the additive hazards model with univariate current status data (Lin et al., 1998; Martinussen and Scheike, 2002). For bivariate data, in addition to facing the same problems as those with univariate data, one needs to deal with the association or correlation between two related failure time variables of interest. For this, we employ the copula model and an efficient estimation procedure is developed for inference. Simulation studies are performed to evaluate the proposed estimates and suggest that the approach works well in practical situations. An illustrative example is provided.
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页码:763 / 774
页数:11
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