2012 9th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technolog 2012
DOI: 10.1109/ecticon.2012.6254122
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MAP estimation of Pearson Type IV random vectors in AWGN

Abstract: This paper is concerned with wavelet-based image denoising using Bayesian technique. In conventional denoising process, The parameters of probability density function (PDF) are usually calculated from the first few moments, mean and variance. In this work, a new image denoising algorithm based on Pearson Type IV random vectors is proposed. Pearson Type IV is used because it allows higher-order moments (skewness and kurtosis) to be incorporated into the noiseless wavelet coefficients' probabilistic model. One o… Show more

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