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Diagnostics for generalized Poisson regression models with errors in variables

机译:变量存在误差的广义Poisson回归模型的诊断

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In this paper, we develop diagnostic methods for generalized Poisson regression (GPR) models with errors in variables based on the corrected likelihood. The one-step approximations of the estimates in the case-deletion model are given and case-deletion and local influence measures are presented. Meanwhile, based on a corrected score function, the testing statistics for the significance of dispersion parameters in GPR models with measurement errors are investigated. Finally, illustration of our methodology is given through numerical examples.
机译:在本文中,我们开发了基于修正似然性的变量存在误差的广义Poisson回归(GPR)模型的诊断方法。给出了案例删除模型中估计值的一步近似,并给出了案例删除和局部影响度量。同时,基于校正分数函数,研究了具有测量误差的GPR模型中色散参数的重要性的检验统计量。最后,通过数值示例说明了我们的方法。

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