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Rician Noise Removal via a Learned Dictionary

机译:通过学习词典删除瑞典噪音

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摘要

This paper proposes a new effective model for denoising images with Rician noise. The sparse representations of images have been shown to be efficient approaches for image processing. Inspired by this, we learn a dictionary from the noisy image and then combine the MAP model with it for Rician noise removal. For solving the proposed model, the primal-dual algorithm is applied and its convergence is studied. The computational results show that the proposed method is promising in restoring images with Rician noise.
机译:本文提出了一种具有瑞典噪声的去噪的新有效模型。已经显示图像的稀疏表示是图像处理的有效方法。灵感来自于此,我们从嘈杂的图像中学到一条字典,然后将地图模型与它结合起来,以便RICian噪声删除。为了解决所提出的模型,应用了原始双向算法,并研究了其收敛性。计算结果表明,该方法在恢复具有瑞典噪声的图像方面很有前景。

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