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Weighted Wilcoxon-type smoothly clipped absolute deviation method.

机译:加权Wilcoxon型平滑修剪绝对偏差法。

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SUMMARY: Shrinkage-type variable selection procedures have recently seen increasing applications in biomedical research. However, their performance can be adversely influenced by outliers in either the response or the covariate space. This article proposes a weighted Wilcoxon-type smoothly clipped absolute deviation (WW-SCAD) method, which deals with robust variable selection and robust estimation simultaneously. The new procedure can be conveniently implemented with the statistical software R. We establish that the WW-SCAD correctly identifies the set of zero coefficients with probability approaching one and estimates the nonzero coefficients with the rate n(-1/2). Moreover, with appropriately chosen weights the WW-SCAD is robust with respect to outliers in both the x and y directions. The important special case with constant weights yields an oracle-type estimator with high efficiency in the presence of heavier-tailed random errors. The robustness of the WW-SCAD is partly justified by its asymptotic performance under local shrinking contamination. We propose a Bayesian information criterion type tuning parameter selector for the WW-SCAD. The performance of the WW-SCAD is demonstrated via simulations and by an application to a study that investigates the effects of personal characteristics and dietary factors on plasma beta-carotene level.
机译:简介:收缩类型变量选择程序最近在生物医学研究中得到了越来越多的应用。但是,它们的性能会受到响应空间或协变量空间中异常值的不利影响。本文提出了一种加权的Wilcoxon型平滑限幅绝对偏差(WW-SCAD)方法,该方法同时处理鲁棒变量选择和鲁棒估计。可以使用统计软件R方便地实施新过程。我们确定WW-SCAD可以正确识别零系数的集合(概率接近1),并以比率n(-1/2)估计非零系数。此外,使用适当选择的权重,WW-SCAD相对于x和y方向上的离群值都具有鲁棒性。在存在较大尾部随机误差的情况下,具有恒定权重的重要特例产生了高效的预言型估计器。 WW-SCAD的鲁棒性在局部缩小的污染下具有渐近性能,这在一定程度上证明了这一点。我们为WW-SCAD提出了贝叶斯信息标准类型调整参数选择器。 WW-SCAD的性能通过模拟和一项研究的应用得到了证明,该研究调查了个人特征和饮食因素对血浆β-胡萝卜素水平的影响。

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