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Multiresolution MAP Despeckling of SAR Images Based on Locally Adaptive Generalized Gaussian pdf Modeling

机译:基于局部自适应广义高斯pdf建模的SAR图像多分辨率MAP去斑

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In this paper, a new despeckling method based on undecimated wavelet decomposition and maximum a posteriori (MAP) estimation is proposed. Such a method relies on the assumption that the probability density function (pdf) of each wavelet coefficient is generalized Gaussian (GG). The major novelty of the proposed approach is that the parameters of the GG pdf are taken to be space-varying within each wavelet frame. Thus, they may be adjusted to spatial image context, not only to scale and orientation. Since the MAP equation to be solved is a function of the parameters of the assumed pdf model, the variance and shape factor of the GG function are derived from the theoretical moments, which depend on the moments and joint moments of the observed noisy signal and on the statistics of speckle. The solution of the MAP equation yields the MAP estimate of the wavelet coefficients of the noise-free image. The restored SAR image is synthesized from such coefficients. Experimental results, carried out on both synthetic speckled images and true SAR images, demonstrate that MAP filtering can be successfully applied to SAR images represented in the shift-invariant wavelet domain, without resorting to a logarithmic transformation.
机译:提出了一种基于未抽取小波分解和最大后验估计的去斑点方法。这种方法依赖于以下假设:每个小波系数的概率密度函数(pdf)是广义高斯(GG)。所提出的方法的主要新颖之处在于,GG pdf的参数在每个小波帧内均被视为时变的。因此,可以将它们调整为适合空间图像上下文,而不仅仅是调整比例和方向。由于要求解的MAP方程是假定pdf模型参数的函数,因此GG函数的方差和形状因子是从理论矩中得出的,理论矩取决于所观察到的噪声信号的矩和联合矩,以及斑点的统计数据。 MAP方程的解产生无噪声图像的小波系数的MAP估计。从这样的系数合成恢复的SAR图像。在合成斑点图像和真实SAR图像上进行的实验结果表明,MAP滤波可以成功应用于以位移不变小波域表示的SAR图像,而无需采用对数变换。

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