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Semiparametric robust estimation of truncated and censored regression models

机译:截断和删失回归模型的半参数鲁棒估计

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摘要

Many estimation methods of truncated and censored regression models such as the maximum likelihood and symmetrically censored least squares (SCLS) are sensitive to outliers and data contamination as we document. Therefore, we propose a semiparametric general trimmed estimator (GTE) of truncated and censored regression, which is highly robust but relatively imprecise. To improve its performance, we also propose data-adaptive and one-step trimmed estimators. We derive the robust and asymptotic properties of all proposed estimators and show that the one-step estimators (e.g., one-step SCLS) are as robust as GTE and are asymptotically equivalent to the original estimator (e.g., SCLS). The finite-sample properties of existing and proposed estimators are studied by means of Monte Carlo simulations. (C) 2012 Elsevier B.V. All rights reserved.
机译:正如我们记录的那样,许多截断和删失回归模型的估计方法(例如最大似然和对称删失最小二乘(SCLS))对异常值和数据污染敏感。因此,我们提出了截断和删失回归的半参数一般修整估计量(GTE),该方法具有很高的鲁棒性,但相对不精确。为了提高其性能,我们还提出了数据自适应和一步调整的估计量。我们推导了所有拟议估计量的鲁棒和渐近性质,并表明单步估计量(例如,单步SCLS)与GTE一样鲁棒,并且渐近等效于原始估计量(例如,SCLS)。通过蒙特卡洛模拟研究了现有估计量和拟议估计量的有限样本性质。 (C)2012 Elsevier B.V.保留所有权利。

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