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Local influence for functional comparative calibration models with replicated data

机译:具有复制数据的功能比较校准模型的局部影响

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摘要

We investigate local influence analysis in functional comparative calibration models with replicated data. A method for selecting appropriate perturbation schemes based on the expected Fisher information matrix with respect to the perturbation vector is proposed. It is shown that arbitrarily perturbing these models may result in misleading inference about the influential subjects. First-order influence measures for identifying the correct influential subjects and replicates on corrected score estimators are defined. We introduce different perturbation schemes including perturbation of subjects and replicates on the corrected likelihood function and obtain the density of the perturbed model from which the methodology is based. Particularly, three perturbation of variances schemes could be a better way to handle badlymodeled subjects or replicates. Two real data sets are analyzed to illustrate the use of our local influence measures.
机译:我们使用复制数据调查功能比较校准模型中的局部影响分析。提出了一种基于期望的关于扰动向量的Fisher信息矩阵来选择合适的扰动方案的方法。结果表明,任意干扰这些模型可能会导致对有影响力的主体的误导性推断。定义了用于识别正确的有影响力的主体并在正确的得分估算器上重复的一阶影响力度量。我们介绍了不同的摄动方案,包括对象的摄动和在校正似然函数上的重复,并获得了该方法所基于的摄动模型的密度。特别是,三个方差方案摄动可能是处理建模不佳的对象或重复项的更好方法。分析了两个真实的数据集,以说明我们本地影响力度量的使用。

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