Axioms (Feb 2022)

Truncated Fractional-Order Total Variation for Image Denoising under Cauchy Noise

  • Jianguang Zhu,
  • Juan Wei,
  • Haijun Lv,
  • Binbin Hao

DOI
https://doi.org/10.3390/axioms11030101
Journal volume & issue
Vol. 11, no. 3
p. 101

Abstract

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In recent years, the fractional-order derivative has achieved great success in removing Gaussian noise, impulsive noise, multiplicative noise and so on, but few works have been conducted to remove Cauchy noise. In this paper, we propose a novel nonconvex variational model for removing Cauchy noise based on the truncated fractional-order total variation. The new model can effectively reduce the staircase effect and keep small details or textures while removing Cauchy noise. In order to solve the nonconvex truncated fractional-order total variation regularization model, we propose an efficient alternating minimization method under the framework of the alternating direction multiplier method. Experimental results illustrate the effectiveness of the proposed model, compared to some previous models.

Keywords