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Total variation and high-order total variation adaptive model for restoring blurred images with Cauchy noise
Authors:Jing-Hua Yang  Xi-Le Zhao  Jin-Jin Mei  Si Wang  Tian-Hui Ma  Ting-Zhu Huang
Abstract:In this paper, we propose a novel model to restore an image corrupted by blur and Cauchy noise. The model is composed of a data fidelity term and two regularization terms including total variation and high-order total variation. Total variation provides well-preserved edge features, but suffers from staircase effects in smooth regions, whereas high-order total variation can alleviate staircase effects. Moreover, we introduce a strategy for adaptively selecting regularization parameters. We develop an efficient alternating minimization algorithm for solving the proposed model. Numerical examples suggest that the proposed method has the advantages of better preserving edges and reducing staircase effects.
Keywords:Cauchy noise  Total variation and high-order total variation  Adaptive regularization parameters  Alternating direction method of multipliers  Image restoration
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