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Multivariate Fields of Experts

Published: August 8, 2025 | arXiv ID: 2508.06490v1

By: Stanislas Ducotterd, Michael Unser

Potential Business Impact:

Improves blurry pictures and scans faster.

We introduce the multivariate fields of experts, a new framework for the learning of image priors. Our model generalizes existing fields of experts methods by incorporating multivariate potential functions constructed via Moreau envelopes of the $\ell_\infty$-norm. We demonstrate the effectiveness of our proposal across a range of inverse problems that include image denoising, deblurring, compressed-sensing magnetic-resonance imaging, and computed tomography. The proposed approach outperforms comparable univariate models and achieves performance close to that of deep-learning-based regularizers while being significantly faster, requiring fewer parameters, and being trained on substantially fewer data. In addition, our model retains a relatively high level of interpretability due to its structured design.

Repos / Data Links

Page Count
10 pages

Category
Electrical Engineering and Systems Science:
Image and Video Processing