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Ratio-Based Nonlocal Anisotropic Despeckling Approach for SAR Images

机译:基于比率的SAR图像非局部各向异性去斑方法

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Although the first filtering algorithms have been proposed more than 30 years ago, despeckling of synthetic aperture radar images is still an open issue. A new boost has been provided by nonlocal (NL) means filters. The idea of NL filters is to move from the exploitation of spatial neighboring pixels to the exploitation of similar pixels found across the image. The difference between the NL algorithms is mainly related to the definition of the similarity between pixels and how similar pixels are exploited in the restoration process. Generally, to define the similarity, the patches are adopted. In this paper, a new similarity criterion for selecting similar pixels is presented. It is based on the definition of the ratio patch between the patch containing the pixel to be restored and the patch containing a candidate similar pixel. If the two pixels are similar, it is expected that the corresponding ratio patch will follow a specific statistical distribution. A modified version of the Kolmogorov-Smirnov distance is introduced to decide whether the statistical distribution of the ratio patch follows the expected one. To reduce the possible artifacts, anisotropy is exploited. Considering the proposed approach, the designed algorithm turns to be unbiased, able to provide the restored solution without any thresholding procedure, in which the tuning is substantially unsupervised and able to work with both single-look and multilook images. The algorithm has been tested on different simulated and real data. Qualitative and quantitative analyses validate the proposed approach, showing very good despeckling capabilities.
机译:尽管已经在30多年前提出了第一个滤波算法,但是合成孔径雷达图像的散斑仍然是一个未解决的问题。非本地(NL)均值过滤器提供了新的提升。 NL滤镜的想法是从对空间相邻像素的利用转移到对整个图像发现的相似像素的利用。 NL算法之间的差异主要与像素之间相似性的定义以及在恢复过程中如何利用相似像素有关。通常,为了定义相似性,采用补丁。本文提出了一种用于选择相似像素的新相似准则。它基于包含要恢复像素的补丁与包含候选相似像素的补丁之间比率补丁的定义。如果两个像素相似,则预期相应的比率补丁将遵循特定的统计分布。引入了Kolmogorov-Smirnov距离的修改版本,以决定比率补丁的统计分布是否遵循预期值。为了减少可能的伪影,利用了各向异性。考虑到所提出的方法,所设计的算法变得无偏见,能够提供恢复的解决方案而没有任何阈值处理过程,在该过程中,调音基本上不受监督,并且能够与单视和多视图像一起使用。该算法已在不同的模拟和真实数据上进行了测试。定性和定量分析验证了所提出的方法,显示了非常好的去斑点能力。

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