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Sure Screening for Gaussian Graphical Models

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arxiv 1407.7819 v1 pith:X3MQLCPD submitted 2014-07-29 stat.ML cs.LG

classification stat.MLcs.LG
keywords grassscreeningedgegraphicalsureestimatedgaussiangraph
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We propose {graphical sure screening}, or GRASS, a very simple and computationally-efficient screening procedure for recovering the structure of a Gaussian graphical model in the high-dimensional setting. The GRASS estimate of the conditional dependence graph is obtained by thresholding the elements of the sample covariance matrix. The proposed approach possesses the sure screening property: with very high probability, the GRASS estimated edge set contains the true edge set. Furthermore, with high probability, the size of the estimated edge set is controlled. We provide a choice of threshold for GRASS that can control the expected false positive rate. We illustrate the performance of GRASS in a simulation study and on a gene expression data set, and show that in practice it performs quite competitively with more complex and computationally-demanding techniques for graph estimation.

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  1. Hub Detection in Gaussian Graphical Models

    stat.ME 2025-05 conditional novelty 6.0 of 10

    In Gaussian graphical models, hubs can be found directly from the top eigenvectors of the precision matrix, and the proposed IPC-HD method does this with consistency guarantees.

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