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A well-balanced and adaptive variational model for the removal of mixed noise
Affiliation:1. China University of Petroleum (East China) Qingdao, Shandong 266580, China;2. School of Control and Computer Engineering, North China Electric Power University, Changping District, Beijing 102206, China;1. Department of Chemical Engineering, Queen''s University, Kingston, ON, Canada
Abstract:Image denoising is one of the fundamental problems concerning image processing. Over the last decade mathematical models based on partial differential equations and variational techniques have led to superior results related to denoising problems. The additive noise models have been studied extensively, however, the reconstruction of images corrupted by nonadditive noise has not yet been thoroughly studied. In this paper, a novel variational method for the reconstruction of images corrupted by non-uniformly distributed noise is presented. The proposed model includes a balance between the data term and the regularization term in the energy functional, which takes into account the statistical control of the parameters and the position of the noisy points related to the edges presented in the image. The parameters are determined by the given initial noisy image. The obtained results have shown the effectiveness and robustness of the proposed model and in restoring images with multiplicative noise or mixed Gaussian noise, while preserving edges and small structures belonging to the image.
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