2022
DOI: 10.1007/s10260-022-00641-6
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Nonparametric estimation of the distribution of gap times for recurrent events

Abstract: In many longitudinal studies, information is collected on the times of different kinds of events. Some of these studies involve repeated events, where a subject or sample unit may experience a well-defined event several times throughout their history. Such events are called recurrent events. In this paper, we introduce nonparametric methods for estimating the marginal and joint distribution functions for recurrent event data. New estimators are introduced and their extensions to several gap times are also give… Show more

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