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Regression analysis of longitudinal data with correlated censoring and observation times

机译:具有相关检查和观察时间的纵向数据的回归分析

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Longitudinal data occur in many fields such as the medical follow-up studies that involve repeated measurements. For their analysis, most existing approaches assume that the observation or follow-up times are independent of the response process either completely or given some covariates. In practice, it is apparent that this may not be true. In this paper, we present a joint analysis approach that allows the possible mutual correlations that can be characterized by time-dependent random effects. Estimating equations are developed for the parameter estimation and the resulted estimators are shown to be consistent and asymptotically normal. The finite sample performance of the proposed estimators is assessed through a simulation study and an illustrative example from a skin cancer study is provided.
机译:纵向数据出现在许多领域,例如涉及重复测量的医学随访研究。对于他们的分析,大多数现有方法都假设观察或随访时间完全独立于响应过程,或者与某些协变量无关。在实践中,很明显这可能不是正确的。在本文中,我们提出了一种联合分析方法,该方法允许进行可能的互相关,这些互相关可以由时间依赖性随机效应来表征。建立了用于参数估计的估计方程,结果表明估计值是一致的并且渐近正态。拟议估计量的有限样本性能通过模拟研究进行了评估,并提供了皮肤癌研究的示例性例子。

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