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Salt-and-pepper noise removal based on nonlocal mean filter

机译:基于非局部均值滤波器的椒盐噪声去除

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摘要

In this paper, a new two-phase method for salt-and-pepper noise removal is proposed which combines the adaptive median filter and nonlocal mean filter. In the first phase, the adaptive median filter is used to identity pixels which are likely to be contaminated by noise. In the second phase, the image is restored using the nonlocal mean filter which is firstly proposed for Gaussian noise removal. It has a strong ability to handle textures and repetitive structures. Experimental results show that the proposed algorithm achieved not only high PSNR but also pleasure visual results even when the noise level is high as 90%.
机译:本文提出了一种将自适应中值滤波器和非局部均值滤波器相结合的两相噪声和椒盐噪声消除方法。在第一阶段,自适应中值滤波器用于识别可能被噪声污染的像素。在第二阶段,使用非局部均值滤波器恢复图像,该非局部均值滤波器首先提出用于去除高斯噪声。它具有处理纹理和重复结构的强大能力。实验结果表明,即使在噪声水平高达90%时,该算法不仅实现了较高的PSNR,而且还具有令人愉悦的视觉效果。

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