Numerical Comparisons of Different Imaging Algorithms

Soulef Bougueroua, Nourreddine Daili
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Abstract

Image processing is the set of operations performed to extract “information” from the image. An interesting problem in digital image processing is the restoration of degraded images. It often happens that the resulting image is different from the expected image. Our problem will therefore be to recover an image close to the original image from a poor quality image (that has been skewed by Gaussian and additive noise). There are several algorithms on how we can improve the broken image in better quality. We present in this paper our numerical results obtained with the models of Tikhonov regularization, ROF, Vese Osher, anisotropic and isotropic TV denoising algorithms.
不同成像算法的数值比较
图像处理是从图像中提取“信息”的一组操作。数字图像处理中一个有趣的问题是退化图像的恢复。通常情况下,生成的图像与期望的图像不同。因此,我们的问题将是从质量差的图像(被高斯和加性噪声扭曲)中恢复接近原始图像的图像。有几种算法可以提高破碎图像的质量。本文给出了用Tikhonov正则化模型、ROF模型、Vese Osher模型、各向异性和各向同性电视去噪算法得到的数值结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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