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Model checking for multiplicative linear regression models with mixed estimators

机译:混合估算器的乘法线性回归模型模型检查

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In this paper, we introduce the mixed estimators based on product least relative error estimation and least squares estimation in a multiplicative linear regression model. The asymptotic properties for the mixed estimators are established. We present some explicit expressions of the optimal estimator of the mixed estimators, and we also suggest some numerical solutions in the simulation studies and real data analysis. Studying model checking problems for multiplicative linear regression models, we propose four test statistics. One is the score-type test statistic, the second one is the residual-based empirical process test statistic marked by proper functions of the covariates. The third one is the integrated conditional moment test statistic by using linear projection weighting function, and the fourth one is the adaptive model test statistic. These test statistics are all related to the mixed estimators. The asymptotic properties of these test statistics are established, and some bootstrap procedures for calculating the critical values are also proposed. Simulation studies are conducted to demonstrate the performance of the proposed estimation procedures, and a real example is analyzed to illustrate its practical usage.
机译:在本文中,我们基于乘法线性回归模型的产品最小相对误差估计和最小二乘估计来介绍混合估计。建立了混合估计器的渐近性质。我们介绍了混合估计器的最佳估计器的一些明确表达,我们还提出了一些数值解决方案在模拟研究和实际数据分析中。研究模型检查乘法线性回归模型的问题,我们提出了四种测试统计。一个是得分型测试统计,第二个是基于剩余的经验过程测试统计,由协变量的适当功能标记。第三个是通过使用线性投影加权函数的集成条件力矩测试统计,第四个是自适应模型测试统计。这些测试统计数据均与混合估计有关。建立了这些测试统计信息的渐近属性,还提出了用于计算临界值的一些引导程序。进行仿真研究以证明所提出的估计程序的性能,分析了实际示例以说明其实际使用。

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