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Semiparametric Methods for Clustered Recurrent Event Data

机译:聚类复发事件数据的半参数方法

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摘要

In biomedical studies, the event of interest is often recurrent and within-subject events cannot usually be assumed independent. In addition, individuals within a cluster might not be independent; for example, in multi-center or familial studies, subjects from the same center or family might be correlated. We propose methods of estimating parameters in two semi-parametric proportional rates/means models for clustered recurrent event data. The first model contains a baseline rate function which is common across clusters, while the second model features cluster-specific baseline rates. Dependence structures for patients-within-cluster and events-within-patient are both unspecified. Estimating equations are derived for the regression parameters. For the common baseline model, an estimator of the baseline mean function is proposed. The asymptotic distributions of the model parameters are derived, while finite-sample properties are assessed through a simulation study. Using data from a national organ failure registry, the proposed methods are applied to the analysis of technique failures among Canadian dialysis patients.
机译:在生物医学研究中,感兴趣的事件通常是反复发生的,而受试者内事件通常不能被认为是独立的。另外,集群中的个人可能不是独立的;例如,在多中心或家族研究中,来自同一中心或家庭的受试者可能是相关的。我们提出了在两个半参数比例率/均值模型中对聚集的重复事件数据进行参数估计的方法。第一个模型包含在群集之间通用的基线速率函数,而第二个模型则具有特定于群集的基线速率。集群内患者和事件内患者的依赖结构均未指定。为回归参数导出估计方程。对于通用基线模型,提出了基线均值函数的估计量。推导了模型参数的渐近分布,同时通过仿真研究评估了有限样本属性。利用来自国家器官衰竭登记处的数据,将所提出的方法应用于加拿大透析患者中​​技术衰竭的分析。

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