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Testing Goodness-of-Fit for the Proportional Hazards Model based on Nested Case-Control Data

机译:基于嵌套案例控制数据的比例危害模型的拟合优度测试

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摘要

Nested case-control sampling is a popular design for large epidemiological cohort studies due to its cost effectiveness. A number of methods have been developed for the estimation of the proportional hazards model with nested case-control data; however, the evaluation of modeling assumption is less attended. In this article, we propose a class of goodness-of-fit test statistics for testing the proportional hazards assumption based on nested case-control data. The test statistics are constructed based on asymptotically mean-zero processes derived from Samuelsen's maximum pseudo-likelihood estimation method. In addition, we develop an innovative resampling scheme to approximate the asymptotic distribution of the test statistics while accounting for the dependent sampling scheme of nested case-control design. Numerical studies are conducted to evaluate the performance of our proposed approach, and an application to the Wilms' Tumor Study is given to illustrate the methodology.
机译:嵌套病例对照抽样由于具有成本效益,因此是大型流行病学队列研究的流行设计。已经开发出许多方法来估计带有嵌套病例控制数据的比例风险模型。但是,建模假设的评估工作较少。在本文中,我们提出了一种拟合优度检验统计量,用于基于嵌套的案例控制数据来检验比例风险假设。基于从Samuelsen的最大伪似然估计方法得出的渐进均值零过程构造检验统计量。此外,我们开发了一种创新的重采样方案,以近似测试统计量的渐近分布,同时考虑了嵌套案例控制设计的依存采样方案。进行了数值研究以评估我们提出的方法的性能,并给出了在威尔姆斯肿瘤研究中的应用以说明该方法。

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