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A transition model for quality-of-life data with non-ignorable non-monotone missing data

机译:生活质量数据与不可忽略的非单调缺失数据的过渡模型

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摘要

In this paper, we consider a full likelihood method to analyze continuous longitudinal responses with non-ignorable non-monotone missing data. We consider a transition probability model for the missingness mechanism. A first-order Markov dependence structure is assumed for both the missingness mechanism and observed data. This process fits the natural data structure in the longitudinal framework. Our main interest is in estimating the parameters of the marginal model and evaluating the missing-at-random assumption in the Effects of Public Information Study, a cancer-related study recently conducted at the University of Pennsylvania. We also present a simulation study to assess the performance of the model.
机译:在本文中,我们考虑了一种完全似然法来分析具有不可忽略的非单调缺失数据的连续纵向响应。我们考虑失踪机制的转移概率模型。缺失机制和观测数据均假定为一阶马尔可夫依赖结构。此过程适合纵向框架中的自然数据结构。我们的主要兴趣是在宾夕法尼亚大学最近进行的一项与癌症相关的研究“公共信息研究”中,估计边缘模型的参数并评估随机缺失假设。我们还提出了一项仿真研究,以评估模型的性能。

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