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Confidence intervals for high-dimensional inverse covariance estimation

2014/03/31 by Jana Jankova, Sara van de Geer · 1 citation
Mathematics · #math.ST #stat.ME #stat.TH

paper · pdf · doi:10.1214/15-ejs1031

published as Electronic Journal of Statistics 2015, Vol. 9, No. 1, 1205 - 1229 · 26 pages

arxiv created 2015/08/11 · arxiv updated 2015/08/13

Abstract

We propose methodology for statistical inference for low-dimensional parameters of sparse precision matrices in a high-dimensional setting. Our method leads to a non-sparse estimator of the precision matrix whose entries have a Gaussian limiting distribution. Asymptotic properties of the novel estimator are analyzed for the case of sub-Gaussian observations under a sparsity assumption on the entries of the true precision matrix and regularity conditions. Thresholding the de-sparsified estimator gives guarantees for edge selection in the associated graphical model. Performance of the proposed method is illustrated in a simulation study.

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