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Estimation of linear mixed models with a mixture of distribution for the random effects.

机译:带有混合分布的随机效应的线性混合模型的估计。

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摘要

The aim of this paper is to propose an algorithm to estimate linear mixed model when random effect distribution is a mixture of Gaussians. This heterogeneous linear mixed model relaxes the classical Gaussian assumption for the random effects and, when used for longitudinal data, can highlight distinct patterns of evolution. The observed likelihood is maximized using a Marquardt algorithm instead of the EM algorithm which is frequently used for mixture models. Indeed, the EM algorithm is computationally expensive and does not provide good convergence criteria nor direct estimates of the variance of the parameters. The proposed method also allows to classify subjects according to the estimated profiles by computing posterior probabilities of belonging to each component. The use of heterogeneous linear mixed model is illustrated through a study of the different patterns of cognitive evolution in the elderly. HETMIXLIN is a free Fortran90 program available on the web site: .
机译:本文的目的是提出一种在随机效应分布是高斯混合的情况下估计线性混合模型的算法。这种异构线性混合模型放松了对随机效应的经典高斯假设,并且当用于纵向数据时,可以突出显示不同的演化模式。使用Marquardt算法而不是通常用于混合模型的EM算法可以最大化观察到的似然性。实际上,EM算法在计算上是昂贵的,并且不能提供良好的收敛标准,也不能直接估计参数的方差。所提出的方法还允许通过计算属于每个成分的后验概率来根据估计的概况对受试者进行分类。通过研究老年人认知进化的不同模式,说明了异质线性混合模型的使用。 HETMIXLIN是一个免费的Fortran90程序,可从以下网站获得:。

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