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Proportional hazards model for competing risks data with missing cause of failure
Authors:Hyun Seunggeun  Lee Jimin  Sun Yanqing
Institution:Division of Mathematics and Computer Science, University of South Carolina Upstate, Spartanburg, SC 29303, USA.
Abstract:We consider the semiparametric proportional hazards model for the cause-specific hazard function in analysis of competing risks data with missing cause of failure. The inverse probability weighted equation and augmented inverse probability weighted equation are proposed for estimating the regression parameters in the model, and their theoretical properties are established for inference. Simulation studies demonstrate that the augmented inverse probability weighted estimator is doubly robust and the proposed method is appropriate for practical use. The simulations also compare the proposed estimators with the multiple imputation estimator of Lu and Tsiatis (2001). The application of the proposed method is illustrated using data from a bone marrow transplant study.
Keywords:Asymptotic property  Augmented inverse probability weighted estimator  Cause-specific hazard function  Double robust property  Inverse probability weighted estimator  Missing cause of failure  Multiple imputation
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