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UNIVERSAL IMAGE NOISE REMOVAL FILTER BASED ON TYPE-2 FUZZY LOGIC SYSTEM AND QPSO

机译:基于2型模糊逻辑系统和QPSO的通用图像噪声去除滤波器。

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摘要

Removing Mixed Gaussian and Impulse Noise (MGIN) is considered to be one of the most essential topics in the domain of image restoration, and it is much more challenging than to remove pure Gaussian or impulse noise separately. Therefore, relatively fewer works have been published in this area. This paper proposes a new integrated approach for MGIN removal that is based on a Non-Singleton Interval Type-2 (NS-IT2) Fuzzy Logic System (FLS), and explains how to design such a NS-IT2 FLS using a Quantum-behaved Particle Swarm Optimization (QPSO) algorithm. Then the paper goes on to introduce two supplementary components, a Block-Matching 3-Dimensional Discrete Cosine Transformation (BM3D DCT) filter and a contrast scaling filter, which augment the overall performance of the NS-IT2 FLS. Finally, the paper shows that this proposed approach indeed provides both quantitatively and visually much better results compared to other often-used non-fuzzy techniques as well as its Type-1 (Tl) and singleton IT2 (S-IT2) counterparts.
机译:去除混合高斯和脉冲噪声(MGIN)被认为是图像恢复领域中最重要的主题之一,它比单独去除纯高斯或脉冲噪声更具挑战性。因此,在这一领域发表的作品相对较少。本文提出了一种基于非单间隔2型(NS-IT2)模糊逻辑系统(FLS)的MGIN去除新集成方法,并说明了如何使用量子行为设计此类NS-IT2 FLS粒子群优化(QPSO)算法。然后,本文继续介绍两个补充组件,一个块匹配3维离散余弦变换(BM3D DCT)滤波器和一个对比度缩放滤波器,它们增强了NS-IT2 FLS的整体性能。最后,论文表明,与其他常用的非模糊技术以及其Type-1(T1)和Singleton IT2(S-IT2)同类产品相比,该提议的方法确实在定量和视觉上都提供了更好的结果。

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