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Estimation and hypothesis test for partial linear multiplicative models

机译:部分线性乘法模型的估计和假设试验

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Estimation and hypothesis tests for partial linear multiplicative models are considered in this paper. A profile least product relative error estimation method is proposed to estimate unknown parameters. We employ the smoothly clipped absolute deviation penalty to do variable selection. A Wald-type test statistic is proposed to test a hypothesis on parametric components. The asymptotic properties of the estimators and test statistics are established. We also suggest a score-type test statistic for checking the validity of partial linear multiplicative models. The quadratic form of the scaled test statistic has an asymptotic chi-squared distribution under the null hypothesis and follows a non-central chi-squared distribution under local alternatives, converging to the null hypothesis at a parametric convergence rate. We conduct simulation studies to demonstrate the performance of the proposed procedure and a real data is analyzed to illustrate its practical usage. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文考虑了部分线性乘法模型的估计和假设试验。提出了一种简档最小产品相对误差估计方法来估计未知参数。我们采用平稳剪切的绝对偏差损失来进行变量选择。提出了一种沃尔德型测试统计来测试参数分量的假设。建立了估计和试验统计的渐近性质。我们还建议检查部分线性乘法模型的有效性的分数型测试统计。缩放试验统计的二次形式具有零假设下的渐近Chi平方分布,并在局部替代方案下遵循非中央Chi平方分布,以参数收敛速度收敛于零假设。我们进行仿真研究以证明所提出的程序的性能,并分析实际数据以说明其实际使用情况。 (c)2018 Elsevier B.v.保留所有权利。

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