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-List Of Titles -Positively constrained total variation penalized image restoration

Please use this identifier to cite or link to this item: http://hdl.handle.net/1959.14/165810

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Title
Positively constrained total variation penalized image restoration
Related
Advances in adaptive data analysis, Vol. 3, Issue 1-2, (2011), p.187-201
DOI
10.1142/S1793536911000817
Publisher
World Scientific Publishing
Date
2011
Author/Creator
Chan, Raymond H
Author/Creator
Liang, Hai-Xia
Author/Creator
Ma, Jun
Description
The total variation (TV) minimization models are widely used in image processing, mainly due to their remarkable ability in preserving edges. There are many methods for solving the TV model. These methods, however, seldom consider the positivity constraint one should impose on image-processing problems. In this paper we develop and implement a new approach for TV image restoration. Our method is based on the multiplicative iterative algorithm originally developed for tomographic image reconstruction. The advantages of our algorithm are that it is very easy to derive and implement under different image noise models and it respects the positivity constraint. Our method can be applied to various noise models commonly used in image restoration, such as the Gaussian noise model, the Poisson noise model, and the impulsive noise model. In the numerical tests, we apply our algorithm to deblur images corrupted by Gaussian noise. The results show that our method give better restored images than the forwardbackward splitting algorithm.
Description
15 page(s)
Subject Keyword
maximum penalized likelihood
Subject Keyword
multiplicative iterative algorithms
Subject Keyword
positivity constraint
Subject Keyword
total variation
Resource Type
journal article
Organisation
Macquarie University. Dept. of Statistics

Identifier
http://hdl.handle.net/1959.14/165810
Identifier
ISSN:1793-5369
Identifier
mq_res-ext-2-s2.0-80052618651
Language
eng
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Citation Format
E-mail Address
Subject
"Advances in adaptive data analysis"
 
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maximum penalized likelihood

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