Literature DB >> 30214095

LARGE COVARIANCE ESTIMATION THROUGH ELLIPTICAL FACTOR MODELS.

Jianqing Fan1, Han Liu1, Weichen Wang1.   

Abstract

We propose a general Principal Orthogonal complEment Thresholding (POET) framework for large-scale covariance matrix estimation based on the approximate factor model. A set of high level sufficient conditions for the procedure to achieve optimal rates of convergence under different matrix norms is established to better understand how POET works. Such a framework allows us to recover existing results for sub-Gaussian data in a more transparent way that only depends on the concentration properties of the sample covariance matrix. As a new theoretical contribution, for the first time, such a framework allows us to exploit conditional sparsity covariance structure for the heavy-tailed data. In particular, for the elliptical distribution, we propose a robust estimator based on the marginal and spatial Kendall's tau to satisfy these conditions. In addition, we study conditional graphical model under the same framework. The technical tools developed in this paper are of general interest to high dimensional principal component analysis. Thorough numerical results are also provided to back up the developed theory.

Entities:  

Keywords:  approximate factor model; conditional graphical model; elliptical distribution; marginal and spatial Kendall’s tau; principal component analysis; sub-Gaussian family

Year:  2018        PMID: 30214095      PMCID: PMC6133289          DOI: 10.1214/17-AOS1588

Source DB:  PubMed          Journal:  Ann Stat        ISSN: 0090-5364            Impact factor:   4.028


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