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Optimal generalized case-cohort sampling design under the additive hazard model

机译:添加剂危险模型下的最佳通用案例 - 队列队列采样设计

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Generalized case-cohort designs have been proved to be a cost-effective way to enhance effectiveness in large epidemiological cohort. In generalized case-cohort design, we first select a subcohort from the underlying cohort by simple random sampling, and then sample a subset of the failures in the remaining subjects. In this article, we propose the inference procedure for the unknown regression parameters in the additive hazards model and develop an optimal sample size allocations to achieve maximum power at a given budget in generalized case-cohort design. The finite sample performance of the proposed method is evaluated through simulation studies. The proposed method is applied to a real data set from the National Wilm's Tumor Study Group.
机译:被证明是广义的案例 - 群组设计是提高大型流行病学队列效果的成本效益。在广义案例 - 队列设计中,我们首先通过简单的随机采样从底层队列中选择子桥,然后在剩余的科目中对失败的子集进行采样。在本文中,我们提出了在添加剂危险模型中的未知回归参数的推理过程,并开发了最佳的样本大小分配,以在广义案例 - 队列设计中实现给定预算的最大功率。通过模拟研究评估所提出的方法的有限样本性能。该方法应用于来自国家威尔人肿瘤研究组的真实数据。

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