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Title: A multi-stage convex relaxation approach to noisy structured low-rank matrix recovery
Authors: Bi, S
Pan, S
Sun, D 
Issue Date: Dec-2020
Source: Mathematical programming computation, Dec. 2020, v. 12, no. 4, p. 569-602
Abstract: This paper concerns with a noisy structured low-rank matrix recovery problem which can be modeled as a structured rank minimization problem. We reformulate this problem as a mathematical program with a generalized complementarity constraint (MPGCC), and show that its penalty version, yielded by moving the generalized complementarity constraint to the objective, has the same global optimal solution set as the MPGCC does whenever the penalty parameter is over a certain threshold. Then, by solving the exact penalty problem in an alternating way, we obtain a multi-stage convex relaxation approach. We provide theoretical guarantees for our approach under a mild restricted eigenvalue condition, by quantifying the reduction of the error and approximate rank bounds of the first stage convex relaxation in the subsequent stages and establishing the geometric convergence of the error sequence in a statistical sense. Numerical experiments are conducted for some structured low-rank matrix recovery examples to confirm our theoretical findings. Our code can be achieved from https://doi.org/10.5281/zenodo.3600639.
Keywords: Structured rank minimization
MPGCC
Exact penalty
Convexrelaxation
Publisher: Springer
Journal: Mathematical programming computation 
ISSN: 1867-2949
EISSN: 1867-2957
DOI: 10.1007/s12532-020-00177-4
Rights: © Springer-Verlag GmbH Germany, part of Springer Nature and Mathematical Optimization Society 2020
This version of the article has been accepted for publication, after peer review (when applicable) and is subject to Springer Nature’s AM terms of use (https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms), but is not the Version of Record and does not reflect post-acceptance improvements, or any corrections. The Version of Record is available online at: http://dx.doi.org/10.1007/s12532-020-00177-4.
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