DocumentCode :
1927290
Title :
Wavelet Based Image Denoising with A Mixture of Gaussian Distributions with Local Parameters
Author :
Rabbani, H. ; Vafadoost, M. ; Selesnick, I.
Author_Institution :
Dept. of Biomed. Eng., Amirkabir Univ. of Technol., Tehran
fYear :
2006
fDate :
38869
Firstpage :
85
Lastpage :
88
Abstract :
The performance of various estimators, such as maximum a posteriori (MAP) is strongly dependent on correctness of the proposed model for noise-free data distribution. Therefore, the selection of a proper model for distribution of wavelet coefficients is very important in the wavelet based image denoising. This paper presents a new image denoising algorithm based on the modeling of wavelet coefficients in each subband with a mixture of Gaussian probability density functions (pdfs) that parameters of mixture model are local. The mixture model is able to capture the heavy-tailed nature of wavelet coefficients and the local parameters can model the empirically observed correlation between the coefficient amplitudes. Therefore, by using this relatively new-statistical model, we are able to better model statistical property of wavelet coefficients. Within this framework, we describe a novel method for image denoising based on designing a MAP estimator, which relies on the mixture distributions with high local correlation. The simulation results show that our proposed technique achieves better performance than several published methods both visually and in terms of peak signal-to-noise ratio (PSNR)
Keywords :
Gaussian distribution; correlation methods; image denoising; wavelet transforms; Gaussian probability density functions; MAP; correlation; image denoising; maximum aposteriori estimator; statistical model; wavelet coefficients; Bayesian methods; Biomedical engineering; Gaussian distribution; Image denoising; Noise reduction; PSNR; Probability density function; Wavelet coefficients; Wavelet domain; Wavelet transforms; Complex Wavelet Transform; MAP Estimator; Mixture Model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia Signal Processing and Communications, 48th International Symposium ELMAR-2006 focused on
Conference_Location :
Zadar
ISSN :
1334-2630
Print_ISBN :
953-7044-03-3
Type :
conf
DOI :
10.1109/ELMAR.2006.329521
Filename :
4127494
Link To Document :
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