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Spectral Density of Sparse Sample Covariance Matrices

Abstract

Applying the replica method of statistical mechanics, we evaluate the eigenvalue density of the large random matrix (sample covariance matrix) of the form J=ATAJ = A^{\rm T} A, where AA is an M×NM \times N real sparse random matrix. The difference from a dense random matrix is the most significant in the tail region of the spectrum. We compare the results of several approximation schemes, focusing on the behavior in the tail region.Comment: 22 pages, 4 figures, minor corrections mad

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    Last time updated on 25/03/2019