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Analysis of speckle noise contribution on wavelet decomposition of SAR images

机译:散斑噪声对SAR图像小波分解的影响分析

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This paper describes the use of the wavelet transform for multiscale texture analysis. One of the basic problems is that texture measures have to adapt to the peculiarity of radar images that contain multiplicative speckle noise. In this paper, the focus is on the effect of speckle on the wavelet transform. The effect is first assessed analytically. It is shown that the wavelet coefficients are modulated by the multiplicative character of the speckle in a manner that is proportional to the target mean backscattering coefficient. The effect of speckle correlation is also demonstrated. Wavelet decomposition is then applied to a simulated radar image generated by a Monte Carlo approach and based on a statistical model. Modeling shows that the correlation properties of speckle have an effect up to a scale that corresponds to its granular size. The results also show that the main contribution to the wavelet transform for an homogeneous area is the first-order statistical distribution of speckle, which remains important even at large scales. The results are then compared to a ERS-1 synthetic aperture radar (SAR) image of a primary tropical forest region.
机译:本文介绍了小波变换在多尺度纹理分析中的使用。基本问题之一是纹理测量必须适应包含乘法斑点噪声的雷达图像的特殊性。在本文中,重点是斑点对小波变换的影响。首先通过分析评估效果。结果表明,小波系数通过散斑的乘法特性以与目标平均后向散射系数成比例的方式进行调制。还显示了斑点相关的效果。然后将小波分解应用于通过蒙特卡洛方法并基于统计模型生成的模拟雷达图像。建模显示,散斑的相关属性在与其颗粒大小相对应的比例范围内具有影响。结果还表明,对均匀区域的小波变换的主要贡献是斑点的一阶统计分布,即使在大尺度下,该分布仍然很重要。然后将结果与原始热带森林地区的ERS-1合成孔径雷达(SAR)图像进行比较。

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