Sparse Coding with Gated Learned ISTA
Kailun Wu, Yiwen Guo, Ziang Li, Changshui Zhang
Abstract
In this paper, we study the learned iterative shrinkage thresholding algorithm (LISTA) for solving sparse coding problems. Following assumptions made by prior works, we first discover that the code components in its estimations may be lower than expected, i.e., require gains, and to address this problem, a gated mechanism amenable to theoretical analysis is then introduced. Specific design of the gates is inspired by convergence analyses of the mechanism and hence its effectiveness can be formally guaranteed. In addition to the gain gates, we further introduce overshoot gates for compensating insufficient step size in LISTA. Extensive empirical results confirm our theoretical findings and verify the effectiveness of our method.
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Install the CLIlune papers fulltext cf1f030b-dfe5-4d25-b01c-36f874cb3aaeCited by top-tier papers5
- Implicit differentiation of Lasso-type models for hyperparameter optimizationQuentin Bertrand, Quentin Klopfenstein, Mathieu Blondel, Samuel Vaiter et al.ICML 2020 · 73 citations
- Hyperparameter Tuning is All You Need for LISTAXiaohan Chen, Jialin Liu, Zhangyang Wang, Wotao YinNeurIPS 2021 · 40 citations
- Learned Extragradient ISTA with Interpretable Residual Structures for Sparse CodingYangyang Li, Lin Kong, Fanhua Shang, Yuanyuan Liu et al.AAAI 2021 · 13 citations
- Non-Asymptotic Uncertainty Quantification in High-Dimensional LearningFrederik Hoppe, Claudio Mayrink Verdun, Hannah Laus, Felix Krahmer et al.NeurIPS 2024 · 5 citations
- Neurally Augmented ALISTAFreya Behrens, Jonathan Sauder, Peter JungICLR 2021 · 1 citation
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