Title of article
Nonparametric estimation of competing risks models with covariates
Author/Authors
Fermanian، نويسنده , , Jean-David، نويسنده ,
Issue Information
دوفصلنامه با شماره پیاپی سال 2003
Pages
36
From page
156
To page
191
Abstract
In competing risks model, several failure times arise potentially. The smallest failure time and its index only are observed. Without specific assumptions, the joint or even the marginal distribution functions of the underlying failure times are not identifiable (A. Tsiatis, Proc. Natl. Acad. Sci. USA 72 (1975) 20). Nonetheless, if each individual is characterized by a “sufficiently informative” set of covariates, these distributions are identifiable under some conditions of regularity (J.J. Heckman and B. Honoré, Biometrika 76 (1989) 325). In this paper, nonparametric kernel estimators of the joint distribution function of failure times conditional on the covariates are proposed. Their weak and strong consistency are discussed.
Keywords
Competing risks , Covariates , Kernel method , Nonparametric estimation
Journal title
Journal of Multivariate Analysis
Serial Year
2003
Journal title
Journal of Multivariate Analysis
Record number
1557875
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