Sigmoid shrinkage for BM3D denoising algorithm

M. Poderico, S. Parrilli, G. Poggi, L. Verdoliva
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引用次数: 13

Abstract

In this work we propose a modified version of the BM3D algorithm recently introduced by Dabov et al. [1] for the denoising of images corrupted by additive white Gaussian noise. The original technique performs a multipoint filtering, where the nonlocal approach is combined with the wavelet shrinkage of a 3D cube composed by similar patches collected by means of block-matching. Our improvement concerns the thresholding of wavelet coefficients, which are subject to a different shrinkage depending on their level of sparsity. The modified algorithm is more robust with respect to block matching errors, especially when noise is high, as proved by experimental results on a large set of natural images.
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用于BM3D去噪的s形收缩算法
在这项工作中,我们提出了最近由Dabov等人[1]引入的BM3D算法的改进版本,用于去除被加性高斯白噪声损坏的图像。原始技术执行多点滤波,其中非局部方法与通过块匹配收集的相似斑块组成的三维立方体的小波收缩相结合。我们的改进涉及小波系数的阈值,小波系数根据其稀疏程度受到不同的收缩。在大量自然图像上的实验结果表明,改进后的算法对块匹配误差具有更强的鲁棒性,特别是在噪声较大的情况下。
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