Deblurring of color images corrupted by impulsive noise.
other · Level V
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Abstract
We consider the problem of restoring a multichannel image corrupted by blur and impulsive noise (e.g., salt-and-pepper noise). Using the variational framework, we consider the L1 fidelity term and several possible regularizers. In particular, we use generalizations of the Mumford-Shah (MS) functional to color images and gamma-convergence approximations to unify deblurring and denoising. Experimental comparisons show that the MS stabilizer yields better results with respect to Beltrami and total variation regularizers. Color edge detection is a beneficial by-product of our methods.
Medical subject headings
- Algorithms
- Artifacts
- Artificial Intelligence
- Color
- Colorimetry
- Image Enhancement
- Image Interpretation, Computer-Assisted