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Nonparametric estimators of the bivariate survival function under random censoring

机译:随机删失下二元生存函数的非参数估计

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摘要

A large number of proposals for estimating the bivariate survival function under random censoring have been made. In this paper we discuss the most prominent estimators, where prominent is meant in the sense that they are best for practical use; Dabrowska's estimator, the Prentice–Cai estimator, Pruitt's modified EM-estimator, and the reduced data NPMLE of van der Laan. We show how these estimators are computed and present their intuitive background. The asymptotic results are summarized. Furthermore, we give a summary of the practical performance of the estimators under different levels of dependence and censoring based on extensive simulation results. This leads also to a practical advise.
机译:已经提出了用于在随机审查下估计二元生存函数的大量建议。在本文中,我们讨论最重要的估计量,其中最重要的估计量是最适合实际使用的意思; Dabrowska的估计量,Prentice-Cai估计量,Pruitt的改进的EM估计量以及van der Laan的简化数据NPMLE。我们展示了这些估计量是如何计算的,并介绍了它们的直观背景。总结了渐近结果。此外,基于广泛的模拟结果,我们给出了估计在不同级别的依赖和审查下的实际性能摘要。这也导致了实用建议。

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