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Fuzzy Peer Groups for Reducing Mixed Gaussian-Impulse Noise From Color Images

机译:用于减少彩色图像中混合高斯脉冲噪声的模糊对等组

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摘要

The peer group of an image pixel is a pixel similarity-based concept which has been successfully used to devise image denoising methods. However, since it is difficult to define the pixel similarity in a crisp way, we propose to represent this similarity in fuzzy terms. In this paper, we introduce the fuzzy peer group concept, which extends the peer group concept in the fuzzy setting. A fuzzy peer group will be defined as a fuzzy set that takes a peer group as support set and where the membership degree of each peer group member will be given by its fuzzy similarity with respect to the pixel under processing. The fuzzy peer group of each image pixel will be determined by means of a novel fuzzy logic-based procedure. We use the fuzzy peer group concept to design a two-step color image filter cascading a fuzzy rule-based switching impulse noise filter by a fuzzy average filtering over the fuzzy peer group. Both steps use the same fuzzy peer group, which leads to computational savings. The proposed filter is able to efficiently suppress both Gaussian noise and impulse noise, as well as mixed Gaussian-impulse noise. Experimental results are provided to show that the proposed filter achieves a promising performance.
机译:图像像素的对等组是基于像素相似度的概念,已成功用于设计图像去噪方法。但是,由于很难以清晰的方式定义像素相似度,因此我们建议用模糊术语表示此相似度。在本文中,我们介绍了模糊对等组概念,它在模糊设置中扩展了对等组概念。模糊对等体组将被定义为将对等体组作为支持集的模糊集,其中每个对等体组成员的隶属度将由其对处理中像素的模糊相似性给出。每个图像像素的模糊对等体组将借助于新颖的基于模糊逻辑的过程来确定。我们使用模糊对等体组的概念,通过对模糊对等体组进行模糊平均滤波,设计了一个两步彩色图像滤波器,以级联基于模糊规则的开关脉冲噪声滤波器。这两个步骤都使用相同的模糊对等组,从而节省了计算量。所提出的滤波器能够有效地抑制高斯噪声和脉冲噪声以及混合的高斯脉冲噪声。实验结果表明,该滤波器具有良好的性能。

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