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Rotationally invariant similarity measures for nonlocal image denoising

机译:非局部图像去噪的旋转不变相似性度量

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Many natural or texture images contain structures that appear several times in the image. One of the denoising filters that successfully take advantage of such repetitive regions is NL means. Unfortunately, the block matching of NL means cannot handle rotation or mirroring. In this paper, we analyse two natural approaches for a rotationally invariant similarity measure that will be used as an alternative to, respectively a modification of the well-known block matching algorithm in nonlocal means denoising. The first approach is based on moment invariants whereas the second one estimates the rotation angle, rotates the block via interpolation and then uses a standard block matching. In contrast to the standard method, the presented algorithms can find similar regions or patches in an image even if they appear in several rotated or mirrored instances. Hence, one can find more suitable regions for the weighted average and yield improved results.
机译:许多自然或纹理图像包含在图像中出现几次的结构。 NL手段是成功利用这种重复区域的降噪滤波器之一。不幸的是,NL的块匹配无法处理旋转或镜像。在本文中,我们分析了旋转不变相似性度量的两种自然方法,这些方法将分别用作对非局部均值去噪中众所周知的块匹配算法的修改。第一种方法基于矩不变性,而第二种方法估计旋转角度,通过插值旋转块,然后使用标准块匹配。与标准方法相比,即使算法出现在多个旋转或镜像实例中,所提出的算法也可以在图像中找到相似的区域或补丁。因此,人们可以找到更合适的区域进行加权平均,并获得更好的结果。

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