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首页> 外文期刊>IEEE signal processing letters >Multiple wavelet basis image denoising using Besov ball projections
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Multiple wavelet basis image denoising using Besov ball projections

机译:使用Besov球投影的多小波基图像去噪

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We propose a new image denoising algorithm that exploits an image's representation in multiple wavelet domains. Besov balls are convex sets of images whose Besov norms are bounded from above by their radii. Projecting an image onto a Besov ball of proper radius corresponds to a type of wavelet shrinkage for image denoising. By defining Besov balls in multiple wavelet domains and projecting onto their intersection using the projection onto convex sets (POCS) algorithm, we obtain an estimate that effectively combines estimates from multiple wavelet domains. While simple, the algorithm provides significant improvement over conventional wavelet shrinkage algorithms based on a single wavelet domain.
机译:我们提出了一种新的图像去噪算法,该算法利用了多个小波域中的图像表示。贝索夫球是凸集的图像,其贝索夫范数从上方被半径限制。将图像投影到适当半径的Besov球上对应于用于图像去噪的小波收缩类型。通过在多个小波域中定义Besov球并使用凸集投影(POCS)算法将其投影到它们的交点上,我们获得了一个有效结合多个小波域估计值的估计值。虽然简单,但是该算法相对于基于单个小波域的常规小波收缩算法提供了显着的改进。

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