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Wavelet-Based Multi-Channel Image Denoising Using Fuzzy Logic

机译:基于小波的模糊逻辑多通道图像降噪

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In this paper, we propose a new wavelet shrinkage algorithm based on fuzzy logic for multi-channel image denoising. In particular, intra-scale dependency within wavelet coefficients is modeled using a fuzzy feature. This feature space distinguishes between important coefficients, which belong to image discontinuity and noisy coefficients. Besides this fuzzy feature, we use inter-relation between different channels for improving the denoising performance compared to denoising each channel, separately. Then, we use the Takagi-Sugeno model based on two fuzzy features for shrinking wavelet coefficients. We examine our multi-channel image denoising algorithm in the dual-tree discrete wavelet transform domain, which is the new shiftable and modified version of discrete wavelet transform. Extensive comparisons with the state-of-the-art image denoising algorithms indicate that our image denoising algorithm has a better performance in noise suppression and edge preservation.
机译:本文提出了一种基于模糊逻辑的小波收缩算法,用于多通道图像去噪。特别地,使用模糊特征对小波系数内的尺度内相关性进行建模。该特征空间区分了属于图像不连续性和噪声系数的重要系数。除了此模糊功能之外,与分别对每个通道进行降噪相比,我们还使用不同通道之间的相互关系来提高降噪性能。然后,我们使用基于两个模糊特征的Takagi-Sugeno模型来缩小小波系数。我们在双树离散小波变换域中研究了多通道图像降噪算法,该算法是离散小波变换的新的可移动和改进版本。与最新的图像降噪算法进行的广泛比较表明,我们的图像降噪算法在噪声抑制和边缘保留方面具有更好的性能。

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