Title of article :
On Corrected Score Approach for Proportional Hazards Model with Covariate Measurement Error
Author/Authors :
Song، Zheng-xiao نويسنده , , Huang، Yijian نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Pages :
-701
From page :
702
To page :
0
Abstract :
In the presence of covariate measurement error with the proportional hazards model, several functional modeling methods have been proposed. These include the conditional score estimator (Tsiatis and Davidian, 2001, Biometrika 88, 447-458), the parametric correction estimator {Nakamura, 1992, Biometrics 48, 829-838), and the nonparametric correction estimator (Huang and Wang, 2000, Journal of the American Statistical Association 95, 1209-1219) in the order of weaker assumptions on the error. Although they are all consistent, each suffers from potential difficulties with small samples and substantial measurement error. In this article, upon noting that the conditional score and parametric correction estimators are asymptot­ically equivalent in the case of normal error, we investigate their relative finite sample performance and discover that the former is superior. This finding motivates a general refinement approach to parametric and nonparametric correction methods. The refined correction estimators are asymptotically equivalent to their standard counterparts, but have improved numerical properties and perform better when the stan­dard estimates do not exist or are outliers. Simulation results and application to an HIV clinical trial are presented.
Keywords :
survival , Proportional hazards , Corrected score , measurement error , Parametric correction , Conditional score , Nonparametric correction
Journal title :
BIOMETRICS (BIOMETRIC SOCIETY)
Serial Year :
2005
Journal title :
BIOMETRICS (BIOMETRIC SOCIETY)
Record number :
84237
Link To Document :
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