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Presmoothed Estimation with Left-Truncated and Right-Censored Data
Authors:M. A. Jácome  M. C. Iglesias-Pérez
Affiliation:1. Department of Mathematics , Universidade da Coru?a , Coru?a, Spain majacome@udc.es;3. Department of Statistics and Operation Research , Universidade de Vigo , Pontevedra, Spain
Abstract:We propose a new method to estimate the cumulative hazard function and the corresponding distribution function of survival times under randomly left-truncated and right-censored observations (LTRC). The new estimators are based on presmoothing ideas, the estimation of the conditional expectation m of the censoring indicator. An almost sure representation for both estimators is established, from which a strong consistency rate and asymptotic normality are derived. It is shown that the presmoothed modification leads to a gain in terms of asymptotic mean squared error. This efficiency with respect to the classical estimators is also shown in a simulation study. Finally, an application to a real data set is provided.
Keywords:Almost sure representation  Cumulative hazard function  Kaplan–Meier estimator  Presmoothing  Survival analysis
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