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Empirical likelihood-based dimension reduction inference for linear error-in-responses models with validation study

机译:线性误差响应模型中基于经验似然的降维推断与验证研究

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摘要

In this paper, linear errors-in-response models are considered in the presence of validation data on the responses. A semiparametric dimension reduction technique is employed to define an estimator of β with asymptotic normality, the estimated empirical loglikelihoods and the adjusted empirical loglikelihoods for the vector of regression coefficients and linear combinations of the regression coefficients, respectively. The estimated empirical log-likelihoods are shown to be asymptotically distributed as weighted sums of independent χ_1~2 and the adjusted empirical loglikelihoods are proved to be asymptotically distributed as standard chi-squares, respectively.
机译:在本文中,在响应中存在验证数据的情况下,考虑了线性误差响应模型。采用半参数降维技术分别定义回归系数向量和回归系数线性组合的β估计量,其估计具有渐近正态性,估计的经验对数似然和调整后的经验对数似然。估计的经验对数似然以独立χ_1〜2的加权和形式渐近分布,而调整后的经验对数似然分别以标准卡方渐近分布。

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