A New Estimator for Image Denoising Using a 2D Dual-Tree M-Band Wavelet Decomposition

Caroline Chaux, Laurent C. Duval, Amel Benazza‐Benyahia, Jean‐Christophe Pesquet · 2006

We propose a new estimator for image denoising using a 2D dual-tree M-band wavelet transform. Our work extends existing block-based wavelet thresholding methods by exploiting simultaneously coefficients in the two M-band wavelet trees. The contributions of this paper are two-fold. Firstly, we perform a statistical analysis of the noise in the considered redundant decomposition. Secondly, we propose an efficient method to remove the noise. Our approach relies on an extension of Stein's formula which allows us to take into account the specific correlations of the noise components. Simulation results are then presented to validate the proposed method

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