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Empirical Likelihood Ratio for Linear Transformation Models with Doubly Censored Data

机译:具有双重删失数据的线性变换模型的经验似然比

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摘要

Double censoring arises when T represents an outcome variable that can only be accurately measured within a certain range, [L, U], where L and U are the left- and right-censoring variables, respectively. When L is always observed, we consider the empirical likelihood inference for linear transformation models, based on the martingale-type estimating equation proposed by Chen et al. (2002). It is demonstrated that both the approach of Lu and Liang (2006) and that of Yu et al. (2011) can be extended to doubly censored data. Simulation studies are conducted to investigate the performance of the empirical likelihood ratio methods.
机译:当T表示只能在特定范围[L,U]中准确测量的结果变量时,会出现双重检查,其中L和U分别是左检查变量和右检查变量。当始终观察到L时,我们基于Chen等人提出的the型估计方程,考虑了线性变换模型的经验似然推断。 (2002)。事实证明,Lu和Liang(2006)的方法以及Yu等人的方法。 (2011)可以扩展到双重审查数据。进行仿真研究以研究经验似然比方法的性能。

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