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Semiparametric analysis of longitudinal data with informative observation times and censoring times

机译:纵向数据的半参数分析,提供有意义的观察时间和检查时间

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摘要

We focus on regression analysis of irregularly observed longitudinal data which often occur in medical follow-up studies and observational investigations. The model for such data involves two processes: a longitudinal response process of interest and an observation process controlling observation times. Restrictive models and questionable assumptions, such as Poisson assumption and independent censoring time assumption, were posed in previous works for analysing longitudinal data. In this paper, we propose a more general model together with a robust estimation approach for longitudinal data with informative observation times and censoring times, and the asymptotic normalities of the proposed estimators are established. Both simulation studies and real data application indicate that the proposed method is promising.
机译:我们专注于对不规律观察到的纵向数据进行回归分析,这些数据经常发生在医学随访研究和观察性研究中。此类数据的模型涉及两个过程:关注的纵向响应过程和控制观察时间的观察过程。在以前的工作中,存在用于分析纵向数据的限制性模型和可疑假设,例如泊松假设和独立审查时间假设。在本文中,我们提出了一个更通用的模型以及针对纵向数据的健壮估计方法,该方法具有信息丰富的观察时间和审查时间,并建立了所提出估计量的渐近正态性。仿真研究和实际数据应用均表明该方法是有前途的。

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