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SPECKLE REDUCTION OF SAR IMAGES USING SURE-BASED ADAPTIVE SIGMOID THRESHOLDING IN THE WAVELET DOMAIN

机译:使用基于基于的自适应S形阈值阈值下的SAR图像的散斑减少在小波域中的阈值

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Synthetic aperture radar (SAR) images are corrupted by speckle noise due to random interference of electromagnetic waves. The speckle degrades the quality of the images and makes interpretation, analysis and classification of SAR images harder. Therefore, some speckle reduction is necessary prior to the processing of SAR images. The speckle noise can be modeled as multiplicative i.i.d. Rayleigh noise. Recently, Sveinsson and Benediktsson [6], proposed an adaptive sigmoid thresholding method for SAR images in the wavelet domain. The coefficients thresholding for this method is based on the choice of parameters in the Sigmoid thresholding function. They were chosen according to a visual appreciation, i.e., by ad hoc method. We propose to select these parameters by minimizing an estimate of square error between the clean image and the denoised one. The key point is that we have in our proposal computable, statistically unbiased, MSE estimate - Stein's Unbiased Risk Estimate (SURE) - that depends on the noisy image alone, not on the clean image. We apply the proposed method on an SAR images, both simulated and real data.
机译:由于电磁波随机干涉,合成孔径雷达(SAR)图像被斑点噪声损坏。散斑会降低图像的质量,并使SAR图像更加难以解释,分析和分类。因此,在处理SAR图像之前需要一些散斑减少。散斑噪声可以为乘法I.i.d。瑞利噪音。最近,Sveinsson和Benediktsson [6]提出了一种在小波域中的SAR图像的自适应S形阈值阈值方法。该方法的系数阈值为基于SIGMOID阈值函数中的参数的选择。根据视觉欣赏,即通过临时方法选择它们。我们建议通过最小化清洁图像和去噪物之间的平方误差的估计来选择这些参数。关键点是我们在我们的建议中拥有了可计算,统计上无偏见,MSE估计 - Stein的无偏见风险估计(肯定) - 这取决于单独的嘈杂图像,而不是在清洁图像上。我们在SAR图像上应用所提出的方法,包括模拟和实际数据。

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