Journal article

Direct likelihood inference and sensitivity analysis for competing risks regression with missing causes of failure

Margarita Moreno-Betancur, Gregoire Rey, Aurelien Latouche

BIOMETRICS | WILEY-BLACKWELL | Published : 2015

Abstract

Competing risks arise in the analysis of failure times when there is a distinction between different causes of failure. In many studies, it is difficult to obtain complete cause of failure information for all individuals. Thus, several authors have proposed strategies for semi-parametric modeling of competing risks when some causes of failure are missing under the missing at random (MAR) assumption. As many authors have stressed, while semi-parametric models are convenient, fully-parametric regression modeling of the cause-specific hazards (CSH) and cumulative incidence functions (CIF) may be of interest for prediction and is likely to contribute towards a fuller understanding of the time-dy..

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