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Multidimensional unstructured sparse recovery via eigenmatrix

Published 27 Feb 2024 in math.NA, cs.LG, and cs.NA | (2402.17215v1)

Abstract: This note considers the multidimensional unstructured sparse recovery problems. Examples include Fourier inversion and sparse deconvolution. The eigenmatrix is a data-driven construction with desired approximate eigenvalues and eigenvectors proposed for the one-dimensional problems. This note extends the eigenmatrix approach to multidimensional problems. Numerical results are provided to demonstrate the performance of the proposed method.

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