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Varying Index Coefficient Models

机译:变指数系数模型

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摘要

It has been a long history of using interactions in regression analysis to investigate alterations in covariate-effects on response variables. In this article, we aim to address two kinds of new challenges arising from the inclusion of such high-order effects in the regression model for complex data. The first kind concerns a situation where interaction effects of individual covariates are weak but those of combined covariates are strong, and the other kind pertains to the presence of nonlinear interactive effects directed by low-effect covariates. We propose a new class of semiparametric models with varying index coefficients, which enables us to model and assess nonlinear interaction effects between grouped covariates on the response variable. As a result, most of the existing semiparametric regression models are special cases of our proposed models. We develop a numerically stable and computationally fast estimation procedure using both profile least squares method and local fitting. We establish both estimation consistency and asymptotic normality for the proposed estimators of index coefficients as well as the oracle property for the nonparametric function estimator. In addition, a generalized likelihood ratio test is provided to test for the existence of interaction effects or the existence of nonlinear interaction effects. Our models and estimation methods are illustrated by simulation studies, and by an analysis of child growth data to evaluate alterations in growth rates incurred by mother's exposures to endocrine disrupting compounds during pregnancy. Supplementary materials for this article are available online.
机译:在回归分析中使用交互作用来研究协变量对响应变量的影响已有很长的历史。在本文中,我们旨在解决因将此类高阶效应包含在复杂数据的回归模型中而引起的两种新挑战。第一种涉及单个协变量的交互作用较弱但组合协变量的交互作用较强的情况,另一种涉及由低效协变量指导的非线性交互作用的存在。我们提出了一类具有变化的索引系数的半参数模型,这使我们能够对协变量对响应变量的非线性交互作用进行建模和评估。结果,大多数现有的半参数回归模型都是我们提出的模型的特例。我们使用轮廓最小二乘法和局部拟合开发了一种数值稳定且计算快速的估计程序。我们为拟议的索引系数估计器以及非参数函数估计器的oracle属性建立了估计一致性和渐近正态性。另外,提供了广义似然比检验来检验相互作用效应的存在或非线性相互作用效应的存在。我们的模型和估计方法通过仿真研究和对儿童生长数据的分析来说明,以评估母亲在怀孕期间暴露于内分泌干扰化合物而导致的生长速率变化。可在线获得本文的补充材料。

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