Minimizing variational models by means of (un)constrained optimization algorithms is a well-known approach for dealing with the image denoising problem. In this paper, we propose a modification of the widely explored TV-ROF model named H-TV-ROF, in which a penalty term based on higher order derivatives is added. A Split Bregman iterative scheme is used to solve the proposed model and its convergence is proved. The performance of the new algorithm is analized and compared with TV-ROF on a set of numerical experiments.

Modification of TV-ROF denoising model based on Split Bregman iterations / Campagna, Rosanna; Crisci, Serena; Cuomo, Salvatore; Marcellino, Livia; Toraldo, Gerardo. - In: APPLIED MATHEMATICS AND COMPUTATION. - ISSN 0096-3003. - 315:(2017), pp. 453-467. [10.1016/j.amc.2017.08.001]

Modification of TV-ROF denoising model based on Split Bregman iterations

CAMPAGNA, ROSANNA;CRISCI, SERENA;CUOMO, SALVATORE;MARCELLINO, LIVIA;TORALDO, GERARDO
2017

Abstract

Minimizing variational models by means of (un)constrained optimization algorithms is a well-known approach for dealing with the image denoising problem. In this paper, we propose a modification of the widely explored TV-ROF model named H-TV-ROF, in which a penalty term based on higher order derivatives is added. A Split Bregman iterative scheme is used to solve the proposed model and its convergence is proved. The performance of the new algorithm is analized and compared with TV-ROF on a set of numerical experiments.
2017
Modification of TV-ROF denoising model based on Split Bregman iterations / Campagna, Rosanna; Crisci, Serena; Cuomo, Salvatore; Marcellino, Livia; Toraldo, Gerardo. - In: APPLIED MATHEMATICS AND COMPUTATION. - ISSN 0096-3003. - 315:(2017), pp. 453-467. [10.1016/j.amc.2017.08.001]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/682969
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