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Misspecification of multimodal random-effect distributions in logistic mixed models for panel survey data

机译:面板调查数据的逻辑混合模型中多峰随机效应分布的错误指定

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Logistic mixed models for longitudinal binary data typically assume normally distributed random effects, which may be too restrictive if an underlying subpopulation structure exists. The paper illustrates the ease of implementing diagnostic tests and fitting random effects as a mixture of normal distributions to detect and address distributional misspecification of the random effects in a potential mover-stayer scenario. Methods are illustrated by using data from the Household, Income and Labour Dynamics in Australia panel survey. The robustness of the normality assumption to violations characterized by a three-component mixture of normal distributions was assessed via a simulation study. Adverse inferential impact of incorrectly assuming normality was identified for parameters directly related to the random effects, resulting in biased estimates and poor coverage rates for confidence intervals. The results support the general robustness of fixed effect parameters to non-extreme distributional violations of the random effects.
机译:纵向二进制数据的逻辑混合模型通常采用正态分布的随机效应,如果存在基础的子种群结构,则该限制可能过于严格。本文说明了实施诊断测试和将随机效应作为正态分布的混合物进行拟合的简便性,以检测和解决潜在动荡者-情景中随机效应的分布错误。通过使用澳大利亚家庭,收入和劳动力动态面板调查的数据来说明方法。通过模拟研究评估了正态性假设对以正态分布的三成分混合为特征的违规的鲁棒性。对于与随机效应直接相关的参数,发现了错误地假设为正态的不利推断影响,从而导致估计偏差和置信区间的不良覆盖率。结果支持固定效应参数对随机效应的非极端分布违规的总体鲁棒性。

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