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首页> 外文期刊>Journal of Multivariate Analysis: An International Journal >Information and asymptotic efficiency of the case-cohort sampling design in Cox's regression model
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Information and asymptotic efficiency of the case-cohort sampling design in Cox's regression model

机译:Cox回归模型中病例队列抽样设计的信息和渐近效率

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摘要

Efficiencies of the maximum pseudolikelihood estimator and a number of related estimators for the case-cohort sampling design in the proportional hazards regression model are studied. The asymptotic information and lower bound for estimating the parametric regression parameter are calculated based on the effective score, which is obtained by determining the component of the parametric score orthogonal to the space generated by the infinite-dimensional nuisance parameter. The asymptotic distributions of the maximum pseudolikelihood and related estimators in an i.i.d. setting show that these estimators do not achieve the computed asymptotic lower bound. Simple guidelines are provided to determine in which instances such estimators are close enough to efficient for practical purposes.
机译:研究了比例风险回归模型中病例队列抽样设计的最大拟似然估计器和许多相关估计器的效率。根据有效分数计算渐近信息和估计参数回归参数的下限,该有效分数是通过确定与无穷维扰动参数生成的空间正交的参数分数的分量而获得的。 i.d.中最大伪似然和相关估计量的渐近分布设置表明这些估计量没有达到计算的渐近下界。提供简单的准则来确定在哪些情况下此类估算器对于实际目的而言足够接近有效。

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