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Mixed model analysis of censored longitudinal data with flexible random-effects density

机译:具有随机随机密度的删减纵向数据混合模型分析

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摘要

Mixed models are commonly used to represent longitudinal or repeated measures data. An additional complication arises when the response is censored, for example, due to limits of quantification of the assay used. While Gaussian random effects are routinely assumed, little work has characterized the consequences of misspecifying the random-effects distribution nor has a more flexible distribution been studied for censored longitudinal data. We show that, in general, maximum likelihood estimators will not be consistent when the random-effects density is misspecified, and the effect of misspecification is likely to be greatest when the true random-effects density deviates substantially from normality and the number of noncensored observations on each subject is small. We develop a mixed model framework for censored longitudinal data in which the random effects are represented by the flexible seminonparametric density and show how to obtain estimates in SAS procedure NLMIXED. Simulations show that this approach can lead to reduction in bias and increase in efficiency relative to assuming Gaussian random effects. The methods are demonstrated on data from a study of hepatitis C virus.
机译:混合模型通常用于表示纵向或重复测量数据。当审查反应时,例如由于所用测定的定量限制,会引起另外的并发症。尽管通常假设采用高斯随机效应,但很少有工作描述了错误指定随机效应分布的后果,也没有针对删失的纵向数据研究更灵活的分布。我们表明,通常,当随机效应密度被错误指定时,最大似然估计值将不一致,而当真正的随机效应密度与正态性和未经审查的观察数显着偏离时,错误指定的影响可能会最大。在每个主题上都是很小的。我们开发了一种用于审查纵向数据的混合模型框架,在该模型中,随机影响由灵活的半非参数密度表示,并显示了如何在SAS程序NLMIXED中获得估计值。仿真表明,相对于假设高斯随机效应,这种方法可以减少偏差并提高效率。这些方法在丙型肝炎病毒研究数据中得到证明。

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