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Maximum Likelihood Estimation in a Semiparametric Logistic/Proportional-Hazards Mixture Model

机译:半参数对数/比例-危险混合模型的最大似然估计

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摘要

We consider large sample inference in a Semiparametric logistic/proportional-hazards mixture model. This model has been proposed to model survival data where there exists a positive portion of subjects in the population who are not susceptible to the event under consideration. Previous studies of the logistic/proportional-hazards mixture model have focused on developing point estimation procedures for the unknown parameters. This paper studies large sample inferences based on the semiparametric maximum likelihood estimator. Specifically, we establish existence, consistency and asymptotic normality results for the semiparametric maximum likelihood estimator. We also derive consistent variance estimates for both the parametric and non-parametric components. The results provide a theoretical foundation for making large sample inference under the logistic/proportional-hazards mixture model.
机译:我们在半参数对数/比例风险混合模型中考虑了大样本推理。已经提出了该模型来对生存数据建模,其中人口中存在不易受到所考虑事件影响的受试者的正部分。逻辑/比例危害混合模型的先前研究集中于针对未知参数的开发点估计程序。本文研究基于半参数最大似然估计量的大样本推论。具体来说,我们为半参数最大似然估计器建立了存在性,一致性和渐近正态性结果。我们还为参数和非参数分量导出一致的方差估计。研究结果为在逻辑/比例-危险混合模型下进行大样本推理提供了理论基础。

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