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Water/land segmentation for sar images based on geodesic distance

机译:基于测地距离的SAR图像水/土地分割

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In this paper, a novel method for water/land segmentation is proposed based on the framework of geodesic distance. The proposed method models the water/land according to the statistics of both the speckle and land covers, which leads to a fast point-wised coarse segmentation. Based on the water/land models, the boundary area between water and land can be localized with automatically generated class labels and adaptively determined bandwidth. Then the refined segmentation is implemented using an improved geodesic distance, combining the manifold idea to enlarge the inter-class differences. Experimental results on real synthetic aperture radar (SAR) images demonstrate the effectiveness and efficiency of the method. The bridges, harbors and coastline can be segmented correctly with very tiny details preserved.
机译:本文提出了一种基于测地距离的水/土地分割方法。所提出的方法根据斑点和土地覆盖的统计数据对水/土地进行建模,从而实现了快速的点方向粗分割。基于水/土地模型,可以使用自动生成的类别标签和自适应确定的带宽来定位水和土地之间的边界区域。然后,使用改进的测地距离实现改进的分割,结合流形思想扩大类间差异。在真实的合成孔径雷达(SAR)图像上的实验结果证明了该方法的有效性和效率。可以正确分割桥梁,港口和海岸线,并保留很小的细节。

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