首页> 外文会议>23rd Symposium of the European Association of Remote Sensing Laboratories; Jun 2-5, 2003; Ghent, Belgium >Extraction of land use/land cover - related information from very high resolution data in urban and suburban areas
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Extraction of land use/land cover - related information from very high resolution data in urban and suburban areas

机译:从城市和郊区的高分辨率数据中提取土地使用/土地覆盖-相关信息

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Very High Resolution (VHR) satellite images offer a great potential for the extraction of land-use and land-cover related information for urban areas. The available techniques are diverse and need to be further examined before operational use is possible. In this paper we applied two pixel-by-pixel classification techniques and the object-oriented image analysis approach (eCognition) for a land-cover classification of a Quickbird image of a study area in the northern part of the city of Ghent (Belgium). Only small differences in overall Kappa were noted between the best results of the pixel-based approach (neural network classification with Haralick texture measures) and the object-oriented classification (eCognition). A rule-based procedure using ancillary information on elevation derived from a digital surface model was applied on the pixel-based land-cover classification in order to obtain information on the spatial distribution of buildings and artificial surfaces.
机译:超高分辨率(VHR)卫星图像为提取城市地区的土地利用和土地覆盖相关信息提供了巨大潜力。可用的技术多种多样,需要在可能的操作使用之前进行进一步检查。在本文中,我们应用了两种逐像素分类技术和面向对象的图像分析方法(eCognition),对比利时根特市北部研究区域的快鸟图像进行土地覆盖分类。在基于像素的方法(采用Haralick纹理度量的神经网络分类)和面向对象的分类(eCognition)的最佳结果之间,仅注意到总体Kappa的微小差异。基于像素的土地覆被分类应用了基于规则的过程,该过程使用了来自数字表面模型的高程辅助信息,以获取有关建筑物和人造表面的空间分布的信息。

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