Sparsity and nullity: Paradigms for analysis dictionary learning

Bian X, Krim H, Bronstein AM, Dai L. 2016. Sparsity and nullity: Paradigms for analysis dictionary learning. SIAM Journal on Imaging Sciences. 9(3), 1107–1126.

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Journal Article | Published | English

Scopus indexed
Author
Bian, Xiao; Krim, Hamid; Bronstein, Alex M.ISTA ; Dai, Liyi
Abstract
Sparse models in dictionary learning have been successfully applied in a wide variety of machine learning and computer vision problems, and as a result have recently attracted increased research interest. Another interesting related problem based on linear equality constraints, namely the sparse null space (SNS) problem, first appeared in 1986 and has since inspired results on sparse basis pursuit. In this paper, we investigate the relation between the SNS problem and the analysis dictionary learning (ADL) problem, and show that the SNS problem plays a central role, and may be utilized to solve dictionary learning problems. Moreover, we propose an efficient algorithm of sparse null space basis pursuit (SNS-BP) and extend it to a solution of ADL. Experimental results on numerical synthetic data and real-world data are further presented to validate the performance of our method.
Publishing Year
Date Published
2016-08-09
Journal Title
SIAM Journal on Imaging Sciences
Publisher
Society for Industrial & Applied Mathematics
Volume
9
Issue
3
Page
1107-1126
eISSN
IST-REx-ID

Cite this

Bian X, Krim H, Bronstein AM, Dai L. Sparsity and nullity: Paradigms for analysis dictionary learning. SIAM Journal on Imaging Sciences. 2016;9(3):1107-1126. doi:10.1137/15m1030376
Bian, X., Krim, H., Bronstein, A. M., & Dai, L. (2016). Sparsity and nullity: Paradigms for analysis dictionary learning. SIAM Journal on Imaging Sciences. Society for Industrial & Applied Mathematics. https://doi.org/10.1137/15m1030376
Bian, Xiao, Hamid Krim, Alex M. Bronstein, and Liyi Dai. “Sparsity and Nullity: Paradigms for Analysis Dictionary Learning.” SIAM Journal on Imaging Sciences. Society for Industrial & Applied Mathematics, 2016. https://doi.org/10.1137/15m1030376.
X. Bian, H. Krim, A. M. Bronstein, and L. Dai, “Sparsity and nullity: Paradigms for analysis dictionary learning,” SIAM Journal on Imaging Sciences, vol. 9, no. 3. Society for Industrial & Applied Mathematics, pp. 1107–1126, 2016.
Bian X, Krim H, Bronstein AM, Dai L. 2016. Sparsity and nullity: Paradigms for analysis dictionary learning. SIAM Journal on Imaging Sciences. 9(3), 1107–1126.
Bian, Xiao, et al. “Sparsity and Nullity: Paradigms for Analysis Dictionary Learning.” SIAM Journal on Imaging Sciences, vol. 9, no. 3, Society for Industrial & Applied Mathematics, 2016, pp. 1107–26, doi:10.1137/15m1030376.

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