稳健M估计的新视角:有限样本理论及其在依赖调整多重检验中的应用

A new perspective on robust $M$-estimation: Finite sample theory and applications to dependence-adjusted multiple testing

Annals of Statistics · 2018
被引 55
ABS 4★

中文导读

本文从新视角研究Huber估计,允许调参随样本量变化,推导出有限样本浓度结果,并应用于依赖调整的多重检验,在重尾数据下控制错误发现率。

Abstract

(1973) 799-821], robust alternatives to the method of least squares are sorely needed. To achieve robustness against heavy-tailed sampling distributions, we revisit the Huber estimator from a new perspective by letting the tuning parameter involved diverge with the sample size. In this paper, we develop nonasymptotic concentration results for such an adaptive Huber estimator, namely, the Huber estimator with the tuning parameter adapted to sample size, dimension, and the variance of the noise. Specifically, we obtain a sub-Gaussian-type deviation inequality and a nonasymptotic Bahadur representation when noise variables only have finite second moments. The nonasymptotic results further yield two conventional normal approximation results that are of independent interest, the Berry-Esseen inequality and Cramér-type moderate deviation. As an important application to large-scale simultaneous inference, we apply these robust normal approximation results to analyze a dependence-adjusted multiple testing procedure for moderately heavy-tailed data. It is shown that the robust dependence-adjusted procedure asymptotically controls the overall false discovery proportion at the nominal level under mild moment conditions. Thorough numerical results on both simulated and real datasets are also provided to back up our theory.

稳健统计有限样本理论多重检验Huber估计