Iterative TV-Regularization of Grey-Scale Images
- 作者: Fuchs M.1, Weickert J.2
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隶属关系:
- Universität des Saarlandes
- Mathematical Image Analysis Group, Faculty of Mathematics and Computer Science, Saarland University
- 期: 卷 242, 编号 2 (2019)
- 页面: 323-336
- 栏目: Article
- URL: https://journal-vniispk.ru/1072-3374/article/view/242977
- DOI: https://doi.org/10.1007/s10958-019-04480-x
- ID: 242977
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详细
The TV-regularization method due to Rudin, Osher, and Fatemi is widely used in mathematical image analysis. We consider a nonstationary and iterative variant of this approach and provide a mathematical theory that extends the results of Radmoser et al. to the BV setting. While existence and uniqueness, a maximum–minimum principle, and preservation of the average grey value are not hard to prove, we also establish the convergence to a constant steady state and consider a large family of Lyapunov functionals. These properties allow us to interpret the iterated TV-regularization as a time-discrete scale-space representation of the original image.
作者简介
M. Fuchs
Universität des Saarlandes
编辑信件的主要联系方式.
Email: fuchs@math.uni-sb.de
德国, Fachbereich 6.1 Mathematik, Postfach 15 11 50, Saarbrücken, D–66041
J. Weickert
Mathematical Image Analysis Group, Faculty of Mathematics and Computer Science, Saarland University
Email: fuchs@math.uni-sb.de
德国, Building E1.7, Saarbrücken, 66041
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