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A New Interscale and Intrascale Orthonormal Wavelet Thresholding for SURE-Based Image Denoising

机译:基于SURE的图像间和尺度内正交小波阈值处理的新方法

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The interscale Stein''s unbiased risk estimator (SURE)-based approach introduced by Luisier is a recent state of the art in orthonormal wavelet denoising, but it is not very effective for those images that have substantial high-frequency contents. To solve this problem, we introduce an effective integration of the intrascale correlations within the interscale SURE-based approach. We show that the consideration of both the intrascale and interscale dependencies of wavelet coefficients brings more denoising gains than those obtained with the interscale SURE-based approach, especially for denoising of images that have substantial textures such as the Barbara image.
机译:Luisier提出的基于尺度间Stein的无偏风险估计器(SURE)的方法是正交小波去噪的最新技术,但对于那些具有大量高频内容的图像而言,效果不是很好。为了解决此问题,我们在基于SURE的尺度间方法中引入了尺度内相关性的有效集成。我们表明,与基于尺度间SURE的方法相比,对小波系数的尺度内和尺度间相关性的考虑带来了更多的去噪增益,尤其是对于具有实质性纹理的图像(如Barbara图像)的去噪。

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