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A New Region-Based Active Contour Model with Skewness Wavelet Energy for Segmentation of SAR Images

机译:基于偏度小波能量的基于区域的主动轮廓模型用于SAR图像分割

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A new method of segmentation for Synthetic Aperture Radar (SAR) images using the skewness wavelet energy has been presented. The skewness is the third order cumulant which measures the local texture along the region-based active contour. Nonlinearity in intensity in-homogeneities often occur in SAR images due to the speckle noise. In this paper we propose a region-based active contour model that is able to use the intensity information in local regions and to cope with the speckle noise and nonlinear intensity inhomogeneity of SAR images. We use a wavelet coefficients energy distribution to analyze the SAR image texture in each sub-band. A fitting energy called skewness wavelet energy is defined in terms of a contour and a functional so that, the regions and their interfaces will be modeled by level set functions. A functional relationship has been calculated on these level sets in terms of the third order cumulant, from which an energy minimization is derived. Minimizing the calculated functions derives the optimal segmentation based on the texture definitions. The results of the implemented algorithm on the test images from the Radarsat SAR images of agricultural and urban regions show a desirable performance of the proposed method.
机译:提出了一种利用偏小波能量分割合成孔径雷达(SAR)图像的新方法。偏度是三阶累积量,用于测量沿基于区域的活动轮廓的局部纹理。由于斑点噪声,强度不均匀性的非线性通常会出现在SAR图像中。在本文中,我们提出了一种基于区域的主动轮廓模型,该模型能够使用局部区域的强度信息,并能应对SAR图像的斑点噪声和非线性强度不均匀性。我们使用小波系数能量分布来分析每个子带中的SAR图像纹理。根据轮廓和函数定义了称为偏度小波能量的拟合能量,因此,将通过水平集函数对区域及其界面进行建模。已经根据三阶累积量在这些级别集上计算了函数关系,由此得出了能量最小化的关系。最小化计算的函数可基于纹理定义得出最佳分割。在农业和城市地区的Radarsat SAR图像上对测试图像执行算法的结果表明,该方法具有理想的性能。

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