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Nonlocal variational model and filter algorithm to remove multiplicative noise

机译:非局部变分模型和滤波算法消除乘性噪声

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摘要

The nonlocal (NL) means filter proposed by Buades, Coll, and Morel (SIAM Multiscale Model. Simul. 4(2), 490-530, 2005), which makes full use of the redundancy information in images, has shown to be very efficient for image denoising with Gauss noise added. On the basis of the NL method and a striver to minimize the conditional mean-square error, we design a NL means filter to remove multiplicative noise, and combining the NL filter to regularity method, we propose a NL total variational (TV) model and present a fast iterated algorithm for it. Experiments demonstrate that our algorithm is better than TV method; it is superior in preserving small structures and textures and can obtain an improvement in peak Signal-to-noise ratio.
机译:由Buades,Coll和Morel提出的非本地(NL)表示滤波器(SIAM Multiscale Model。Simul。4(2),490-530,2005年),它充分利用了图像中的冗余信息,已证明非常有效添加高斯噪声后,图像去噪效率很高。在NL方法和力求最小化条件均方误差的基础上,我们设计了NL均值滤波器以消除乘法噪声,并将NL滤波器与规则性方法结合,提出了NL总变分(TV)模型和提出了一种快速迭代算法。实验表明,该算法优于电视方法。它在保留小的结构和纹理方面表现优异,并且可以提高峰值信噪比。

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