DocumentCode :
2226248
Title :
Iterative image deconvolution using overcomplete representations
Author :
Chaux, Caroline ; Combettes, Patrick L. ; Pesquet, Jean-Christophe ; Wajs, Valerie R.
Author_Institution :
Inst. Gaspard Monge, Univ. de Marne la Vallee, Marne la Vallée, France
fYear :
2006
fDate :
4-8 Sept. 2006
Firstpage :
1
Lastpage :
5
Abstract :
We consider the problem of deconvolving an image with a priori information on its representation in a frame. Our variational approach consists of minimizing the sum of a residual energy and a separable term penalizing each frame coefficient individually. This penalization term may model various properties, in particular sparsity. A general iterative method is proposed and its convergence is established. The novelty of this work is to extend existing methods on two distinct fronts. First, a broad class of convex functions are allowed in the penalization term which, in turn, yields a new class of soft thresholding schemes. Second, while existing results are restricted to orthonormal bases, our algorithmic framework is applicable to much more general overcomplete representations. Numerical simulations are provided.
Keywords :
convex programming; deconvolution; image representation; iterative methods; a priori information; algorithmic framework; convex functions; general overcomplete representations; iterative image deconvolution; soft thresholding schemes; Abstracts; Deconvolution; Encoding;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2006 14th European
Conference_Location :
Florence
ISSN :
2219-5491
Type :
conf
Filename :
7071682
Link To Document :
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