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Combination of texture and shape analysis for a rapid rivers extraction from high resolution SAR images

机译:纹理与形状分析相结合,可从高分辨率SAR图像中快速提取河流

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Water surface extraction using satellite images proves to be of great importance due to its utility in several applications such as land use, floods management and monitoring. Among the wide range of sensors orbiting around the earth, Synthetic Aperture Radar (SAR) proves to be a very effective tool in this context due to its robustness to unfavorable weather conditions and its cloud penetrating capabilities. This paper presents a novel rivers extraction method from SAR images mainly based on the combination of a local texture measurement and global knowledge associated to the shape of the object of interest. A local texture measurement is first computed for every pixel of the image to extract homogeneous surfaces, then a mathematical morphology operator is applied to attenuate noise generated by speckle characterizing SAR images. Finally, the surface occupied by the object of interest is compared to the surface associated to the smallest rectangle that encloses this object in order to separate rivers from lakes in the image. The proposed approach was tested on SAR images acquired by RADARSAT-2 satellite from numerous regions of Canada. Our experimental results demonstrate that the proposed approach is robust and effective.
机译:由于其在土地利用,洪水管理和监测等多种应用中的实用性,使用卫星图像提取水面被证明是非常重要的。在围绕地球运行的各种传感器中,合成孔径雷达(SAR)在这种情况下被证明是非常有效的工具,因为它对不利的天气条件具有鲁棒性,并且具有穿透云层的能力。本文提出了一种新的从SAR图像中提取河流的方法,该方法主要基于局部纹理测量和与目标物体形状相关的全局知识的结合。首先为图像的每个像素计算局部纹理测量值,以提取均质表面,然后应用数学形态学算子来衰减通过对SAR图像进行斑点表征而生成的噪声。最后,将感兴趣的对象所占据的表面与与包围该对象的最小矩形相关联的表面进行比较,以将图像中的河流与湖泊分开。在加拿大许多地区的RADARSAT-2卫星获取的SAR图像上对提出的方法进行了测试。我们的实验结果表明,所提出的方法是可靠且有效的。

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