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首页> 外文期刊>The Annals of applied statistics >GENERALIZED ACCELERATED RECURRENCE TIME MODEL IN THE PRESENCE OF A DEPENDENT TERMINAL EVENT
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GENERALIZED ACCELERATED RECURRENCE TIME MODEL IN THE PRESENCE OF A DEPENDENT TERMINAL EVENT

机译:在依赖终端事件存在下的广义加速复发时间模型

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Recurrent events are commonly encountered in longitudinal studies. The observation of recurrent events is often stopped by a dependent terminal event in practice. For this data scenario, we propose two sensible adaptations of the generalized accelerated recurrence time (GART) model (J. Amer. Statist. Assoc. 111 (2016) 145-156) to provide useful alternative analyses that can offer physical interpretations while rendering extra flexibility beyond the existing work based on the accelerated failure time model. Our modeling strategies align with the rationale underlying the use of the survivors' rate function or the adjusted rate function to account for the presence of the dependent terminal event. For the proposed models, we identify and develop estimation and inference procedures which can be readily implemented based on existing software. We establish the asymptotic properties of the new estimator. Simulation studies demonstrate good finite-sample performance of the proposed methods. An application to a dataset from the Cystic Fibrosis Foundation Patient Registry (CFFPR) illustrates the practical utility of the new methods.
机译:纵向研究通常遇到经常性事件。在实践中依赖终端事件通常会停止对经常性事件的观察。对于此数据场景,我们提出了两个明智的适应性的广义加速复发时间(GART)模型(J.Amer。陈述。缔约置。111(2016)145-156)提供有用的替代分析,可以在渲染额外提供物理解释基于加速故障时间模型的现有工作的灵活性。我们的建模策略与使用幸存者的速率函数或调整后的速率函数的理由对齐,以解释因依赖终端事件的存在。对于所提出的模型,我们识别和开发估算和推理过程,可以根据现有软件容易地实现。我们建立了新估算器的渐近性质。仿真研究表明了所提出的方法的良好有限样本性能。从囊性纤维化基础患者注册表(CFFPR)到数据集的应用说明了新方法的实用性。

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