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Nonparametric estimators for a survivor function of paired recurrent events
Institution:1. Department of Applied Mathematics, Maharaja Bir Bikram University, Agartala, Tripura, 799004, India;2. Centre for Mathematical Biology and Ecology, Department of Mathematics, Jadavpur University, Kolkata 700032, India;1. Computer Science Department, School of Computer Science, Bina Nusantara University, Jl. K.H. Syahdan No. 9, Jakarta 11480, Indonesia;2. Information Systems Department, School of Information Systems, Bina Nusantara University, Jl. K.H. Syahdan No. 9, Jakarta 11480, Indonesia
Abstract:Recurrent event data arise in longitudinal studies where each study subject may experience multiple events during the follow-up. In many situations in survival studies, pairs of individuals can potentially experience recurrent events. The analysis of such data is not straightforward as it involves two kinds of dependences, namely, dependence between the individuals in the same pair and dependence among a sequence of pairs. In the present paper, we introduce a new stochastic model for the analysis of such recurrent event data. Nonparametric estimators for a bivariate survivor function are developed. Asymptotic properties of the estimators are discussed. Simulation studies are carried out to assess the finite sample properties of the estimator. We illustrate the procedure with real life data on eye disease.
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