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Fixed and Random Effects Selection by REML and Pathwise Coordinate Optimization

机译:通过REML和路径坐标优化选择固定和随机效果

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摘要

We propose a two-stage model selection procedure for the linear mixed-effects models. The procedure consists of two steps: First, penalized restricted log-likelihood is used to select the random effects, and this is done by adopting a Newton-type algorithm. Next, the penalized log-likelihood is used to select the fixed effects via pathwise coordinate optimization to improve the computation efficiency. We prove that our procedure has the oracle properties. Both simulation studies and a real data example are carried out to examine finite sample performance of the proposed fixed and random effects selection procedure. Supplementary materials including R code used in this article and proofs for the theorems are available online.
机译:我们提出了线性混合效应模型的两阶段模型选择程序。该过程包括两个步骤:首先,使用惩罚受限对数似然法来选择随机效应,这是通过采用牛顿型算法来完成的。接下来,采用惩罚对数似然法通过路径坐标优化选择固定效应,以提高计算效率。我们证明我们的过程具有oracle属性。仿真研究和真实数据示例均进行了研究,以检验所提出的固定效应和随机效应选择程序的有限样本性能。可在本文中在线获取本文中使用的包括R代码在内的补充材料和定理证明。

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