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Wishart distribution based level set method for polarimetric SAR image segmentation

机译:基于Wishart分布的极化SAR图像水平集方法

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We develop a level set segmentation method for a wide range of SAR data from single channel intensity data to multifrequency and/or multitemporal polarimetric data in this study. By modeling of the minimization functional for segmentation and the complex Wishart distribution for polarimetric SAR data representation, we propose a model consisting of three parts, an original ‘fitting’ term derived from the maximum a posteriori (MAP) estimator, a classical curve length term that drives the zero level set toward the object boundaries, and the region term of interest. A CFAR Polarimetric SAR edge detector is used as the edge indicator, and also a penalty term is employed to completely eliminate the costly re-initialization procedure during the traditional level set evolution. The proposed method of the two-phase segmentation is extended to a multiphase case. Good results are obtained by using both simulated polarimetric data and two NASA-JPL L-band polarimetric SAR images.
机译:在本研究中,我们针对从单一通道强度数据到多频和/或多时相极化数据的各种SAR数据开发了一种水平集分割方法。通过对用于分割的最小化函数和用于极化SAR数据表示的复杂Wishart分布进行建模,我们提出了一个模型,该模型由三个部分组成,一个是从最大后验(MAP)估计量派生的原始“拟合”项,一个是经典曲线长度项从而将零级设置推向对象边界和感兴趣的区域项。 CFAR极化SAR边缘检测器用作边缘指示符,并且使用惩罚项来完全消除传统水平集演进过程中代价高昂的重新初始化过程。所提出的两相分割方法被扩展到多相情况。通过同时使用模拟极化数据和两个NASA-JPL L波段极化SAR图像可获得良好的结果。

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