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Semiparametric analysis of mixture regression models with competing risks data

机译:具有竞争风险数据的混合回归模型的半参数分析

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摘要

In the analysis of competing risks data, cumulative incidence function is a useful summary of the overall crude risk for a failure type of interest. Mixture regression modeling has served as a natural approach to performing covariate analysis based on this quantity. However, existing mixture regression methods with competing risks data either impose parametric assumptions on the conditional risks or require stringent censoring assumptions. In this article, we propose a new semiparametric regression approach for competing risks data under the usual conditional independent censoring mechanism. We establish the consistency and asymptotic normality of the resulting estimators. A simple resampling method is proposed to approximate the distribution of the estimated parameters and that of the predicted cumulative incidence functions. Simulation studies and an analysis of a breast cancer dataset demonstrate that our method performs well with realistic sample sizes and is appropriate for practical use.
机译:在竞争风险数据的分析中,累积发生率函数是对感兴趣的失败类型的整体原油风险的有用总结。混合物回归建模已成为基于此数量执行协变量分析的自然方法。但是,现有的具有竞争风险数据的混合回归方法要么对条件风险强加参数假设,要么要求严格的审查假设。在本文中,我们为通常的条件独立审查机制下的竞争风险数据提出了一种新的半参数回归方法。我们建立了所得估计量的一致性和渐近正态性。提出了一种简单的重采样方法来近似估计参数的分布和预测的累积入射函数的分布。仿真研究和对乳腺癌数据集的分析表明,我们的方法在实际样本量下表现良好,非常适合实际使用。

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