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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Multiphase SAR Image Segmentation With $G^{0}$ -Statistical-Model-Based Active Contours
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Multiphase SAR Image Segmentation With $G^{0}$ -Statistical-Model-Based Active Contours

机译:基于$ G ^ {0} $-基于统计模型的主动轮廓的多相SAR图像分割

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摘要

In this paper, we propose a variational multiphase segmentation framework for synthetic aperture radar (SAR) images based on the statistical model and active contour methods. The proposed method is inspired by the multiregion level set partition approaches but with two improvements. First, an energy functional which combines the region information and edge information is defined. The regional term is based on the $G^{0}$ statistical model. The flexibility of $G^{0}$ distribution makes the proposed approach to segment SAR images of various types. Second, we use fuzzy membership functions to represent the regions. The total variation of the membership functions is used to ensure the regularity. This not just guarantees the energy functional to be convex with respect to the membership functions but also enables us to adopt a fast iteration scheme to solve the minimization problem. The proposed method can segment SAR images of $N$ regions with $N - 1$ membership functions. The flexibility of the proposed method is demonstrated by experiments on SAR images of different resolutions and scenes. The computational efficiency is also verified by comparing with the level-set-method-based SAR image segmentation approach.
机译:在本文中,我们基于统计模型和主动轮廓线方法提出了一种合成孔径雷达(SAR)图像的变分多相分割框架。所提出的方法受到多区域级别集划分方法的启发,但有两个改进。首先,定义结合区域信息和边缘信息的能量功能。区域性术语基于 $ G ^ {0} $ 统计模型。 $ G ^ {0} $ 分布的灵活性使得该方法可以分割各种类型的SAR图像。其次,我们使用模糊隶属函数表示区域。隶属函数的总变化用于确保规则性。这不仅保证了能量函数相对于隶属函数是凸的,而且使我们能够采用快速迭代方案来解决最小化问题。所提出的方法可以用 $ N-1 $ 成员函数。通过对不同分辨率和场景的SAR图像进行实验,证明了该方法的灵活性。通过与基于水平集方法的SAR图像分割方法进行比较,也验证了计算效率。

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