Vector anistropic filter for multispectral image denoising

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TitreVector anistropic filter for multispectral image denoising
Type de publicationConference Paper
Year of Publication2015
AuteursBen Said A, Foufou S, Hadjidj R
EditorMeriaudeau F, Aubreton O
Conference NameTWELFTH INTERNATIONAL CONFERENCE ON QUALITY CONTROL BY ARTIFICIAL VISION
PublisherLe2i; CNRS; Univ Bourgogne; IUT Le Creusot Ctr Univ Condorcet; Conseil Reg Bourgogne
Conference Location1000 20TH ST, PO BOX 10, BELLINGHAM, WA 98227-0010 USA
ISBN Number978-1-62841-699-2
Mots-clésAnisotropic filter, Multispectral image, Sparse matrix transform
Résumé

In this paper, we propose an approach to extend the application of anisotropic Gaussian filtering for multi-spectral image denoising. We study the case of images corrupted with additive Gaussian noise and use sparse matrix transform for noise covariance matrix estimation. Specifically we show that if an image has a low local variability, we can make the assumption that in the noisy image, the local variability originates from the noise variance only. We apply the proposed approach for the denoising of multispectral images corrupted by noise and compare the proposed method with some existing methods. Results demonstrate an improvement in the denoising performance.

DOI10.1117/12.2182746