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A Spline-Based Lack-Of-Fit Test for Independent Variable Effect in Poisson Regression

机译:泊松回归中自变量效应的基于样条的拟合度检验

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摘要

In regression analysis of count data, independent variables are often modeled by their linear effects under the assumption of log-linearity. In reality, the validity of such an assumption is rarely tested, and its use is at times unjustifiable. A lack-of-fit test is proposed for the adequacy of a postulated functional form of an independent variable within the framework of semiparametric Poisson regression models based on penalized splines. It offers added flexibility in accommodating the potentially non-loglinear effect of the independent variable. A likelihood ratio test is constructed for the adequacy of the postulated parametric form, for example log-linearity, of the independent variable effect. Simulations indicate that the proposed model performs well, and misspecified parametric model has much reduced power. An example is given.
机译:在计数数据的回归分析中,独立变量通常在对数线性假设下通过线性效应来建模。实际上,这种假设的有效性很少得到检验,其使用有时是不合理的。针对基于惩罚样条的半参数Poisson回归模型框架内的自变量的假定函数形式的适当性,提出了不适合检验。它在适应自变量的潜在非对数线性影响方面提供了更大的灵活性。为假设变量参数形式(例如对数线性)的适当性,构造似然比检验。仿真表明,所提出的模型性能良好,参数模型错误指定的功耗大大降低。举一个例子。

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