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首页> 外文期刊>Journal of visual communication & image representation >Image denoising via local and nonlocal circulant similarity
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Image denoising via local and nonlocal circulant similarity

机译:通过局部和非局部循环相似度对图像进行去噪

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摘要

A patch based image denoising method is developed in this paper by introducing a new type of image self-similarity. This self-similarity is obtained by cyclic shift, which is called "circulant similarity". Given a corrupted image patch, it can be estimated by incorporating circulant similarity into a weighted averaging filter. By choosing an appropriate kernel as weight function, the patch filter is implemented by circular convolution, and can be efficiently solved using fast Fourier transform. In addition, the circulant similarity can be enhanced by using nonlocal modeling. We stack the similar image patches into 3D groups, and propose a denoising scheme based on group estimation across the patches. Numerical experiments demonstrate that the proposed method with local circulant similarity outperforms much its local filtering based counterparts, and the proposed method with nonlocal circulant similarity shows very competitive performance with state-of-the-art denoising method, especially on images corrupted by strong noise. (C) 2015 Elsevier Inc. All rights reserved.
机译:通过引入一种新型的图像自相似度,提出了一种基于补丁的图像去噪方法。通过循环移位获得这种自相似性,这被称为“循环相似性”。给定损坏的图像补丁,可以通过将循环相似度合并到加权平均滤波器中来进行估计。通过选择适当的内核作为权重函数,可通过圆形卷积实现面片滤波器,并可以使用快速傅里叶变换有效地对其进行求解。另外,可以通过使用非局部建模来增强循环相似度。我们将相似的图像补丁堆叠为3D组,并提出基于跨补丁的组估计的降噪方案。数值实验表明,所提出的具有局部循环相似性的方法比基于局部滤波的方法要好得多,并且所提出的具有非局部循环相似性的方法与最新的去噪方法相比表现出非常好的竞争性能,尤其是在强噪声破坏的图像上。 (C)2015 Elsevier Inc.保留所有权利。

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