利用稀疏表示去除随机值脉冲噪声

B. Deka, P. Bora
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引用次数: 10

摘要

提出了一种新的两阶段去噪方法,用于去除图像中的随机脉冲噪声。首先,使用脉冲噪声检测方案检测可能被脉冲噪声破坏的像素(称为候选噪声)。然后利用基于稀疏表示的图像补图方法迭代重建候选噪声,直至收敛。该方法为去除随机值脉冲噪声提供了一种简单而有效的算法。实验表明,该算法在视觉上和定量上都优于当前最先进的脉冲噪声去除技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Removal of random-valued impulse noise using sparse representation
This paper proposes a novel two-stage denoising method for removing random-valued impulse noise from an image. First, an impulse noise detection scheme is used to detect the pixels which are likely to be corrupted by the impulse noise (called the noise candidates). Then the noise candidates are reconstructed by using the image inpainting method based on sparse representation in an iterative manner until convergence. The proposed method leads to a simple and very effective denoising algorithm for the random-valued impulse noise removal. It is experimentally shown that the proposed algorithm outperforms the state-of-the-art denoising techniques for the removal of impulse noise both visually and quantitatively.
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