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Influence analysis of additive mixed-effects nonlinear regression models via EM algorithm

机译:基于EM算法的加性混合效应非线性回归模型的影响分析

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This paper presents a unified method for influence analysis to deal with random effects appeared in additive nonlinear regression models for repeated measurement data. The basic idea is to apply the Q-function, the conditional expectation of the complete-data log-likelihood function obtained from EM algorithm, instead of the observed-data log-likelihood function as used in standard influence analysis. Diagnostic measures are derived based on the case-deletion approach and the local influence approach. Two real examples and a simulation study are examined to illustrate our methodology.
机译:本文针对重复测量数据的加性非线性回归模型中出现的随机效应,提出了一种统一的影响分析方法。基本思想是应用Q函数,即从EM算法获得的完整数据对数似然函数的条件期望,而不是标准影响分析中使用的观测数据对数似然函数。诊断方法是基于案例删除方法和本地影响方法得出的。研究了两个真实的例子和一个仿真研究,以说明我们的方法。

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