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Nonlinear regression models with general distortion measurement errors

机译:具有一般失真测量误差的非线性回归模型

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摘要

This paper considers nonlinear regression models when neither the response variable nor the covariates can be directly observed, but are measured with both multiplicative and additive distortion measurement errors. We propose conditional variance and conditional mean calibration estimation methods for the unobserved variables, then a nonlinear least squares estimator is proposed. For the hypothesis testing of parameter, a restricted estimator under the null hypothesis and a test statistic are proposed. The asymptotic properties for the estimator and test statistic are established. Lastly, a residual-based empirical process test statistic marked by proper functions of the regressors is proposed for the model checking problem. We further suggest a bootstrap procedure to calculate critical values. Simulation studies demonstrate the performance of the proposed procedure and a real example is analysed to illustrate its practical usage.
机译:当不能直接观察到响应变量或协变量,但同时测量了乘性和相加畸变测量误差时,本文考虑了非线性回归模型。我们提出了针对未观测变量的条件方差和条件均值校准估计方法,然后提出了非线性最小二乘估计器。对于参数的假设检验,提出了原假设下的受限估计量和检验统计量。建立了估计量和检验统计量的渐近性质。最后,针对模型检验问题,提出了一种基于残差的经验过程测试统计量,该统计量具有回归函数的适当功能。我们进一步建议使用引导程序来计算临界值。仿真研究证明了所提出程序的性能,并通过一个实际的例子来说明其实际用法。

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