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首页> 外文期刊>Statistical methods in medical research >A combined gamma frailty and normal random-effects model for repeated, overdispersed time-to-event data
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A combined gamma frailty and normal random-effects model for repeated, overdispersed time-to-event data

机译:结合了伽玛脆弱和正常随机效应模型的重复,过度分散的事件数据

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This paper presents, extends, and studies a model for repeated, overdispersed time-to-event outcomes, subject to censoring. Building upon work by Molenberghs, Verbeke, and Demetrio (2007) and Molenberghs etal. (2010), gamma and normal random effects are included in a Weibull model, to account for overdispersion and between-subject effects, respectively. Unlike these authors, censoring is allowed for, and two estimation methods are presented. The partial marginalization approach to full maximum likelihood of Molenberghs etal. (2010) is contrasted with pseudo-likelihood estimation. A limited simulation study is conducted to examine the relative merits of these estimation methods. The modeling framework is employed to analyze data on recurrent asthma attacks in children on the one hand and on survival in cancer patients on the other.
机译:本文介绍,扩展并研究了重复的,过度分散的事件发生时间(受审查)的模型。以Molenberghs,Verbeke和Demetrio(2007)和Molenberghs等人的工作为基础。 (2010年),Weibull模型中包括了伽玛效应和正常随机效应,分别说明了过度分散效应和主体间效应。与这些作者不同,允许进行审查,并提出了两种估计方法。部分边缘化方法使Molenberghs等人具有最大的可能性。 (2010年)与伪似然估计相反。进行了有限的模拟研究,以检验这些估计方法的相对优点。该建模框架一方面用于分析儿童复发性哮喘发作的数据,另一方面用于分析癌症患者的生存率的数据。

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