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Random-intercept misspecification in generalized linear mixed models for binary responses

机译:广义线性混合模型中二进制响应的随机截距错误指定

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We study properties of maximum likelihood estimators of parameters in generalized linear mixed models for a binary response in the presence of random-intercept model misspecification. Further exploiting the test proposed in an existing work initially designed for detecting general random-effects misspecification, we are able to reveal how the true random-intercept distribution deviates from the assumed. Besides this advance compared to the existing methods, we also provide theoretical insights on when and why the proposed test has low power to identify certain forms of misspecification. Large-sample numerical study and finite-sample simulation experiments are carried out to illustrate the theoretical findings.
机译:我们研究在随机拦截模型错误指定的情况下二进制响应的广义线性混合模型中参数的最大似然估计的属性。进一步利用最初设计用于检测一般随机效应错误指定的现有工作中提出的测试,我们能够揭示真正的随机截距分布如何偏离假设。除了与现有方法相比的这一进步外,我们还提供了有关何时以及为何拟议的测试无法识别某些形式的错误指定的理论见解。进行了大样本数值研究和有限样本模拟实验以说明理论发现。

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