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Image denoising using the ridgelet bi-frame

机译:使用脊波双帧对图像进行去噪

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摘要

We are concerned with the performance evaluation of the ridgelet bi-frame for image denoising application. The ridgelet bi-frame is a new (as far as we know) bi-frame system that can efficiently deal with straight singularities in two dimensions. We show that, for images dominated by straight edges, the ridgelet bi-frame can obtain much better restoration results than wavelet systems. We also investigate the statistical properties of the ridgelet bi-frame coefficients of these images. Results indicate that the marginal distribution of ridgelet bi-frame coefficients has higher kurtosis than that of wavelet coefficients of the same images. We describe a simple method through which statistical denoising algorithms previously developed in the wavelet domain can be conveniently introduced into the ridgelet bi-frame domain. In addition, we use the ridgelet bi-frame to construct another new bi-frame system referred to as the curvelet bi-frame, which can be viewed as a generalized version of the curvelet. Experiment results show that the simple hard-threshold procedure in the curvelet bi-frame domain produces restoration results comparable with those due to the state-of-the-art denoising methods. (c) 2006 Optical Society of America.
机译:我们关注用于图像去噪应用的脊波双帧的性能评估。脊波双帧是一种新的(据我们所知)双帧系统,它可以有效地处理二维的直线奇异点。我们表明,对于以直边为主的图像,脊波双帧可以获得比小波系统更好的恢复结果。我们还研究了这些图像的脊波双帧系数的统计特性。结果表明,与相同图像的小波系数相比,脊波双帧系数的边缘分布具有更高的峰度。我们描述了一种简单的方法,通过该方法可以将先前在小波域中开发的统计去噪算法方便地引入到脊波双帧域中。此外,我们使用ridgelet双帧构建另一个称为Curvelet双帧的新双帧系统,可以将其视为Curvelet的广义版本。实验结果表明,Curvelet双帧域中的简单硬阈值过程所产生的恢复结果可与最新的去噪方法相媲美。 (c)2006年美国眼镜学会。

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