Journal of Statistical Computation and Simulation | 2021

Prediction accuracy measures for time-to-event models with left-truncated and right-censored data

 
 
 

Abstract


ABSTRACT Many time-to-event models have been developed for left-truncated and right-censored (LTRC) data, which arise in many applications involving follow-up studies. However, there is no work on evaluating the prediction accuracy of the time-to-event models for LTRC data. This paper develops two novel weighted prediction summary measures for a nonlinear prediction function with LTRC data. They are based on a weighted variance decomposition and a weighted prediction error decomposition, by the inverse probability weighting technique. The resulting measures are shown to be consistent and asymptotically normal. Simulation studies are conducted to evaluate their good finite sample performance. An empirical application to the Channing House data set illustrates the methodology.

Volume 91
Pages 2764 - 2779
DOI 10.1080/00949655.2021.1908285
Language English
Journal Journal of Statistical Computation and Simulation

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