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Waterbody mapping: a comparison of remotely sensed and GIS open data sources

机译:水管映射:远程感测和GIS开放数据源的比较

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摘要

Surface water maps are essential for many environmental applications. Waterbody delineation from satellite images remains a challenging task due to sensor limitations, the presence of clouds, the low albedo surfaces in urban areas, topographic, and atmospheric conditions. In this paper, a model based on the Supported Vector Machine (SVM) classifier was adopted for waterbody extraction from Sentinel-2, Landsat 8 Operational Land Imager (OLI) and RapidEye satellite images. As well, the accuracy of two other sources (OpenStreetMapping (OSM) and Military Geographic Institute (MGI)) was tested. The free images from Sentinel-2 and Landsat 8 OLI were more accurate (Kappa (KHAT):0.89, 0.88) data sources than commercial RapidEye images (KHAT: 0.79). Regarding the performance between Sentinel-2 and Landsat 8 OLI, Sentinel-2 obtained the most accurate results (overall accuracy 94.49 vs. 94.17, commission error 1.34 vs. 1.87). Due to the variable spatial resolution of OSM and MGI data, it was not possible to detect small waterbodies with these sources, and therefore high values of omission error and a strong underestimation of the area of surface water were obtained. This study demonstrates the suitability of free images for mapping and monitoring of surface waterbodies, including small water bodies.
机译:表面水图对于许多环境应用来说是必不可少的。由于传感器限制,云层的存在,城市地区,地形和大气条件,卫星图像划分的卫星图像界定仍然是一个具有挑战性的任务。在本文中,采用了一种基于支持的向量机(SVM)分类器的模型,用于来自Sentinel-2,Landsat 8运营陆地成像器(OLI)和绑定卫星图像的水体提取。同样,测试了两个其他来源的准确性(OpenStreetMapping(OSM)和军用地理学研究所(MGI))。来自Sentinel-2和Landsat 8 Oli的免费图像更准确(Kappa(khat):0.89,0.88)数据来源,而不是商业缩醛图像(Khat:0.79)。关于Sentinel-2和Landsat 8 Oli之间的性能,Sentinel-2获得了最准确的结果(整体准确性94.49与94.17,佣金错误1.34与1.87)。由于OSM和MGI数据的可变空间分辨率,因此无法检测这些来源的小水上水平,因此获得了高值的省略误差和强度低估了地表水区域。该研究表明了免费图像用于测绘和监测表面水上的图像,包括小水体。

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