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Empirical likelihood-based confidence intervals for mean medical cost with censored data
Jenny Jeyarajah1, Gengsheng Qin1
1Department of Mathematics and Statistics, Georgia State University, Atlanta, 30303, GA, U.S.A.
Abstract:
In this paper, we propose empirical likelihood methods based on influence function and jackknife techniques for constructing confidence intervals for mean medical cost with censored data. We conduct a simulation study to compare the coverage probabilities and interval lengths of our proposed confidence intervals with that of the existing normal approximation-based confidence intervals and bootstrap confidence intervals. The proposed methods have better finite-sample performances than existing methods. Finally, we illustrate our proposed methods with a relevant example.
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