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首页> 外文期刊>ISPRS International Journal of Geo-Information >Land Surface Water Mapping Using Multi-Scale Level Sets and a Visual Saliency Model from SAR Images
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Land Surface Water Mapping Using Multi-Scale Level Sets and a Visual Saliency Model from SAR Images

机译:使用多尺度水位集和SAR图像可视化模型对地表水进行制图

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摘要

Land surface water mapping is one of the most basic classification tasks to distinguish water bodies from dry land surfaces. In this paper, a water mapping method was proposed based on multi-scale level sets and a visual saliency model (MLSVS), to overcome the lack of an operational solution for automatically, rapidly and reliably extracting water from large-area and fine spatial resolution Synthetic Aperture Radar (SAR) images. This paper has two main contributions, as follows: (1) The method integrated the advantages of both level sets and the visual saliency model. First, the visual saliency map was applied to detect the suspected water regions (SWR), and then the level set method only needed to be applied to the SWR regions to accurately extract the water bodies, thereby yielding a simultaneous reduction in time cost and increase in accuracy; (2) In order to make the classical Itti model more suitable for extracting water in SAR imagery, an improved texture weighted with the Itti model (TW-Itti) is employed to detect those suspected water regions, which take into account texture features generated by the Gray Level Co-occurrence Matrix (GLCM) algorithm, Furthermore, a novel calculation method for center-surround differences was merged into this model. The proposed method was tested on both Radarsat-2 and TerraSAR-X images, and experiments demonstrated the effectiveness of the proposed method, the overall accuracy of water mapping is 98.48% and the Kappa coefficient is 0.856.
机译:地表水制图是区分水体与干旱地表的最基本分类任务之一。本文提出了一种基于多尺度水位集和可视化显着模型(MLSVS)的水图绘制方法,以克服自动,快速,可靠地从大面积和精细空间分辨率中提取水的操作解决方案的不足。合成孔径雷达(SAR)图像。本文有两个主要贡献,如下:(1)该方法结合了水平集和视觉显着性模型的优点。首先,使用视觉显着性图来检测可疑水域(SWR),然后只需将水平设置方法应用于SWR区域即可准确提取水体,从而同时减少了时间成本并增加了准确性(2)为了使经典的Itti模型更适合于在SAR图像中提取水,采用Itti模型(TW-Itti)加权的改进纹理来检测那些可疑的水域,同时考虑到由该模型还引入了灰度共生矩阵算法(GLCM),并提出了一种新的中心-周围差异计算方法。在Radarsat-2和TerraSAR-X图像上对提出的方法进行了测试,实验证明了该方法的有效性,水测图的整体精度为98.48%,Kappa系数为0.856。

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