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Speckle Suppression in SAR Images Using the 2-D GARCH Model

机译:使用二维GARCH模型抑制SAR图像中的斑点

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摘要

A novel Bayesian-based speckle suppression method for Synthetic Aperture Radar ( SAR) images is presented that preserves the structural features and textural information of the scene. First, the logarithmic transform of the original image is analyzed into the multiscale wavelet domain. We show that the wavelet coefficients of SAR images have significantly non-Gaussian statistics that are best described by the 2-D GARCH model. By using the 2-D GARCH model on the wavelet coefficients, we are capable of taking into account important characteristics of wavelet coefficients, such as heavy tailed marginal distribution and the dependencies between the coefficients. Furthermore, we use a maximum a posteriori (MAP) estimator for estimating the clean image wavelet coefficients. Finally, we compare our proposed method with various speckle suppression methods applied on synthetic and actual SAR images and we verify the performance improvement in utilizing the new strategy.
机译:提出了一种基于贝叶斯的合成孔径雷达(SAR)图像斑点抑制方法,该方法保留了场景的结构特征和纹理信息。首先,将原始图像的对数变换分析到多尺度小波域中。我们表明,SAR图像的小波系数具有明显的非高斯统计量,最好用2-GARCH模型进行描述。通过对小波系数使用二维GARCH模型,我们能够考虑小波系数的重要特征,例如重尾边缘分布和系数之间的依赖性。此外,我们使用最大后验(MAP)估计器来估计干净图像小波系数。最后,我们将我们提出的方法与应用于合成和实际SAR图像的各种散斑抑制方法进行了比较,并验证了在使用新策略时的性能改进。

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