Speckle Reduction Using Fuzzy Morphological Anisotropic Diffusion

S. Easanuruk, S. Mitatha, S. Intajag, S. Chitwong
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引用次数: 4

Abstract

One of important tasks of radar image processing is reducing speckle noise as preprocessing to enhance performance of other processing such as segmentation, classification, etc. In this paper, we then apply the fuzzy morphology together with anisotropic diffusion to reduce speckled noise of SAR image. Anisotropic diffusion is designed based on additive noise model, but the form of speckled image is in multiplicative speckle model. To transform additive noise model into multiplicative speckle model, logarithmic transformation is then used. Our algorithm performs in log-domain. Finally, de-speckled image being in log-domain is converted into spatial domain by using exponential transformation. Simulated image as speckled image is performed with our algorithm to show and compare results with recent reports in term of both signal to noise ratio (SNR) and the equivalent number of looks (ENL). Also, real SAR image is performed to confirm results in term of ENL only. Results from our experiment are shown that de-speckled image can smooth out in homogeneous area and preserve edge in heterogeneous area. Both visual image and numerical results are used to show all results
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模糊形态学各向异性扩散的散斑消减
雷达图像处理的重要任务之一是在预处理过程中降低散斑噪声,以提高分割、分类等其他处理的性能。在本文中,我们将模糊形态学与各向异性扩散相结合来降低SAR图像的斑点噪声。各向异性扩散是基于加性噪声模型设计的,但散斑图像的形式是乘性散斑模型。为了将加性噪声模型转化为乘性散斑模型,采用对数变换。我们的算法在对数域中执行。最后,利用指数变换将对数域中的去斑点图像转换到空间域中。用我们的算法模拟了斑点图像,并将结果与最近的报告在信噪比(SNR)和等效外观数(ENL)方面进行了比较。此外,我们还利用真实的SAR图像来验证仅考虑ENL的结果。实验结果表明,去斑点图像可以在均匀区域平滑,在非均匀区域保持边缘。采用视觉图像和数值结果来显示所有结果
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