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Application of Mixture Regression for Improved Polarimetric SAR Speckle Filtering

机译:混合回归在改进极化SAR斑点滤波中的应用

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Speckle filtering is an indispensable operation in synthetic aperture radar (SAR) image processing but one which inevitably reduces image resolution. In order to preserve the intrinsic target features, adaptive speckle filters have been developed using weighted averages commensurate with the similarity of the target statistics. The target statistics are commonly derived from a prefiltering step which suffers from residue speckle contamination and feature smearing. In this paper, we adopted finite mixture models to characterize the observed in-scene variation and proposed a rigorous and progressive mixture regression method to better estimate the target statistics. The mixture model once fitted is able to capture the statistical properties of the highly textured and heterogeneous target variation, which is often observed in high-resolution SAR images. A nonlocal mean method is used for robust similarity evaluation of the local variation patterns between small image patches. The goal is to develop an improved polarimetric SAR (PolSAR) speckle filter that can accomplish a solid balance between speckle suppression and feature preservation. With the proposed filter, distinct scattering mechanisms and small-scale target features are retained from the start, even with single-look complex PolSAR observations. We test the algorithm using simulated data and single-look high-resolution PolSAR images: one acquired by DLR's F-SAR system and one by DLR's E-SAR system.
机译:斑点滤波是合成孔径雷达(SAR)图像处理中必不可少的操作,但不可避免地会降低图像分辨率。为了保留固有的目标特征,已经使用与目标统计的相似性相称的加权平均值来开发自适应散斑滤波器。目标统计通常来自预过滤步骤,该步骤会受到残留斑点斑点污染和特征污点的影响。在本文中,我们采用有限混合模型来表征观察到的现场变化,并提出了一种严格且渐进的混合回归方法来更好地估计目标统计量。拟合后的混合模型能够捕获高度纹理化和异构目标变化的统计特性,这在高分辨率SAR图像中经常会观察到。非局部均值方法用于小图像块之间局部变化模式的鲁棒相似性评估。目标是开发一种改进的极化SAR(PolSAR)散斑滤波器,该滤波器可以实现散斑抑制和特征保留之间的牢固平衡。使用提出的滤波器,即使是单看复杂的PolSAR观测,也从一开始就保留了独特的散射机制和小规模目标特征。我们使用模拟数据和单视高分辨率PolSAR图像测试该算法:一张是由DLR的F-SAR系统获取的,另一张是由DLR的E-SAR系统获取的。

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