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A general approach to mixed effects modeling of residual variances in generalized linear mixed models

机译:广义线性混合模型中残差方差的混合效应建模的一般方法

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摘要

We propose a general Bayesian approach to heteroskedastic error modeling for generalized linear mixed models (GLMM) in which linked functions of conditional means and residual variances are specified as separate linear combinations of fixed and random effects. We focus on the linear mixed model (LMM) analysis of birth weight (BW) and the cumulative probit mixed model (CPMM) analysis of calving ease (CE). The deviance information criterion (DIC) was demonstrated to be useful in correctly choosing between homoskedastic and heteroskedastic error GLMM for both traits when data was generated according to a mixed model specification for both location parameters and residual variances. Heteroskedastic error LMM and CPMM were fitted, respectively, to BW and CE data on 8847 Italian Piemontese first parity dams in which residual variances were modeled as functions of fixed calf sex and random herd effects. The posterior mean residual variance for male calves was over 40% greater than that for female calves for both traits. Also, the posterior means of the standard deviation of the herd-specific variance ratios (relative to a unitary baseline) were estimated to be 0.60 ± 0.09 for BW and 0.74 ± 0.14 for CE. For both traits, the heteroskedastic error LMM and CPMM were chosen over their homoskedastic error counterparts based on DIC values.
机译:我们为广义线性混合模型(GLMM)提出了一种通用的贝叶斯方法进行异方差误差建模,其中条件均值和残差的链接函数被指定为固定和随机效应的单独线性组合。我们着重于出生体重(BW)的线性混合模型(LMM)分析和产犊缓解(CE)的累积概率混合模型(CPMM)分析。当根据位置参数和残差方差的混合模型规范生成数据时,偏差信息标准(DIC)可用于正确选择两个特性的同方差和异方差误差GLMM。异方差误差LMM和CPMM分别拟合了8847个意大利Piemontese一级平坝的BW和CE数据,其中残余方差被建模为固定小牛性别和​​随机群效应的函数。两种特征的雄性犊牛的后平均残留方差均大于雌性犊牛的40%以上。同样,畜群特异性方差比(相对于单一基线)的标准偏差的后验均值对于体重指数估计为0.60±0.09,对于CE指数估计为0.74±0.14。对于这两个性状,基于DIC值选择了异方差误差LMM和CPMM而不是其同方差误差。

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