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首页> 外文期刊>Statistica Sinica >JOINT TEST OF PARAMETRIC AND NONPARAMETRIC EFFECTS IN PARTIAL LINEAR MODELS FOR GENE-ENVIRONMENT INTERACTION
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JOINT TEST OF PARAMETRIC AND NONPARAMETRIC EFFECTS IN PARTIAL LINEAR MODELS FOR GENE-ENVIRONMENT INTERACTION

机译:基因环境相互作用部分线性模型中参数和非参数效应的联合试验

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摘要

Gene-environment (GxE) interactions play a crucial role in many complex diseases. Many studies have highlighted the importance of the linear and nonlinear effects of GxE interactions to the risk of contracting diseases. Linear effects can be modeled parametrically, whereas nonlinear effects are typically modeled and estimated using nonparametric functions under the framework of partial linear models. Because of the difference in the rates of convergence of the parametric and nonparametric parts, few statistical studies have assessed the simultaneous effects of the linear and nonlinear effects of GxE interactions in the context of a partial linear model. In this study, we consider a hypothesis test to simultaneously detect the linear and nonlinear effects in a generalized partial linear varying-coefficient model. We propose a B-spline backfitted kernel method to estimate the effect of nonlinear interactions. A Wald-type statistic is constructed for the joint testing problem based on the nonparametric generalized likelihood ratio statistic. We show that the joint test statistic asymptotically follows a chi(2)-distribution under the null hypothesis of no GxE interaction effect, and a noncentral chi(2)-distribution under the alternative. Moreover, the proposed test can simultaneously detect alternatives at optimal rates for both the parametric and the nonparametric components. The utility of the method is demonstrated using extensive simulations and a case study.
机译:基因 - 环境(GXE)相互作用在许多复杂疾病中发挥着至关重要的作用。许多研究强调了GXE相互作用与收缩疾病风险的线性和非线性影响的重要性。线性效果可以参数化建模,而非线性效应通常在部分线性模型的框架下使用非参数函数进行建模和估计。由于参数和非参数零件的收敛率的差异,很少有统计研究已经评估了在部分线性模型的上下文中的GXE相互作用的线性和非线性效应的同时效应。在本研究中,我们考虑一个假设试验,以同时检测广义部分线性变化模型中的线性和非线性效果。我们提出了一种B样条带回合的核方法来估计非线性相互作用的效果。基于非参数广义似然比统计,为联合测试问题构建了沃尔德型统计。我们表明,在NO GXE相互作用效应的零假设下,关节试验统计学渐近呈奇(2) - 分布,并且在替代方案下分布了非中心Chi(2)。此外,所提出的测试可以同时检测参数和非参数分量的最佳速率的替代方案。使用广泛的模拟和案例研究证明了该方法的效用。

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