The basins of attraction of the global minimizers of non-convex inverse problems with low-dimensional models in infinite dimension

Author:

Traonmilin Yann1,Aujol Jean-François1,Leclaire Arthur1

Affiliation:

1. University of Bordeaux, Bordeaux INP, CNRS, IMB , UMR 5251,F-33400 Talence , France

Abstract

Abstract Non-convex methods for linear inverse problems with low-dimensional models have emerged as an alternative to convex techniques. We propose a theoretical framework where both finite dimensional and infinite dimensional linear inverse problems can be studied. We show how the size of the basins of attraction of the minimizers of such problems is linked with the number of available measurements. This framework recovers known results about low-rank matrix estimation and off-the-grid sparse spike estimation, and it provides new results for Gaussian mixture estimation from linear measurements.

Funder

French Agence Nationale de la Recherche

Publisher

Oxford University Press (OUP)

Subject

Applied Mathematics,Computational Theory and Mathematics,Numerical Analysis,Statistics and Probability,Analysis

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