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Joint modelling of longitudinal biomarker and gap time between recurrent events: copula-based dependence

机译:纵向生物标志物和复发事件之间的间隔时间的联合建模:基于系的依赖

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摘要

In this paper, we will extend the joint model of longitudinal biomarker and recurrent event via copula function for accounting the dependence between the two processes. The general idea of joining separate processes by allowing model-specific random effect may come from different families distribution. It is a main advantage of the proposed method that a copula construction does not constrain the choice of marginal distributions of random effects. A maximum likelihood estimation with importance sampling technique as a simple and easy understanding method is employed to model inference. To evaluate and verify the validation of the proposed joint model, a bootstrapping method as a model-based resampling is developed. Our proposed joint model is also applied to pemphigus disease data for assessing the effect of biomarker trajectory on risk of recurrence.
机译:在本文中,我们将通过copula函数扩展纵向生物标志物和复发事件的联合模型,以说明这两个过程之间的依赖性。通过允许特定于模型的随机效应来加入独立过程的一般想法可能来自不同的族分布。所提出的方法的主要优点是,copula结构不限制随机效应的边际分布的选择。采用重要性采样技术作为一种简单易懂的方法的最大似然估计来对推理进行建模。为了评估和验证所提出的联合模型的有效性,开发了一种基于模型的重采样自举方法。我们提出的联合模型还应用于天疱疮疾病数据,以评估生物标志物轨迹对复发风险的影响。

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