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Diagnostic checks in mixture cure models with interval-censoring

机译:间隔审查的混合固化模型中的诊断检查

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Models for interval-censored survival data presenting a fraction of cure or immune patients have recently been proposed in the literature, particularly extending the mixture cure model to interval-censored data. However, little is known about the goodness-of-fit of such models. In a mixture cure model, the survival distribution of the entire population is improper and expressed in terms of the survival distribution of uncured individuals, i.e. the latency part of the model, and the probability to experience the event of interest, i.e. the incidence part. To validate a mixture cure model, assumptions made on both parts need to be checked, i.e. the survival distribution of uncured individuals, the link function used in the latency and the linearity of the covariates used in the both parts of the model. In this work, we investigate the Cox-Snell and deviance residuals and show how they can be adapted and used to perform diagnostics checks when all subjects are right- or interval-censored and some subjects are cured with unknown cure status. A large simulation study investigates the ability of these residuals to detect a departure from the assumptions of the mixture model. Developed techniques are applied to a real data set about Alzheimer's disease.
机译:最近提出了在文献中提出了一部分固化或免疫患者的间歇删除的存活数据的模型,特别是将混合物固化模型扩展到间隔缩短的数据。然而,关于这种模型的美好健康知之甚少。在混合固化模型中,整个人口的存活分布是不正确的,并且就未固定的人的生存分布而表达,即模型的潜伏部分,以及经历感兴趣事件的概率,即发病率部分。为了验证混合固化模型,需要检查在两个部分上的假设,即未固化个体的存活分布,延迟中使用的链接功能以及模型两部分中使用的协变量的线性度。在这项工作中,我们调查了Cox-Snell和偏差残差,并展示了它们如何适应并用于执行诊断检查,当所有受试者都是正确的或间隔的,有些科目用未知的固化状态治愈。大型仿真研究调查了这些残留物检测偏离混合模型的假设的能力。开发的技术应用于关于阿尔茨海默病的真实数据。

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