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首页> 外文期刊>Circuits, systems, and signal processing >Generalized Fractional Filter-Based Algorithm for Image Denoising
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Generalized Fractional Filter-Based Algorithm for Image Denoising

机译:基于广义的分数滤波器的图像去噪算法

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摘要

This paper presents a new algorithm for image denoising using a fractional integral mask of the K-operator. K-operator is the generalized fractional operator, and it reduces to Riemann-Liouville and Caputo fractional derivatives in a special case. The proposed algorithm is applied to digital images of different nature to demonstrate the performance of image denoising. Experimental results are compared with other existing filters together with block matching and 3-D filtering, and weighted nuclear norm minimization-based approaches. The obtained experimental results show that the proposed algorithm is computationally efficient and its average performance is comparatively better than other discussed methods.
机译:本文介绍了使用K-Operator的分数整体掩模的图像去噪算法。 K-Operator是广义的分数运营商,它在特殊情况下降低到瑞米南 - 丽维尔和Caputo分数衍生物。所提出的算法应用于不同性质的数字图像,以证明图像去噪的性能。将实验结果与其他现有滤波器与块匹配和3-D滤波进行比较,以及加权核规范最小化的方法。所获得的实验结果表明,该算法计算有效,其平均性能比其他讨论的方法相对较好。

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