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Urban ecological land extraction from Chinese Gaofen-1 data using object-oriented classification techniques

机译:面向对象分类技术从中国高分1号数据中提取城市生态土地

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The urbanization process changed the urban ecological land and consequently affected the quality of urban residents' environment, and it was very important to obtain urban ecological land cover information. In this paper, an object-oriented method was proposed to extract urban ecological land cover from the multiple-channel images acquired by Chinese Gaofen-1 (GF-1) satellite. Taking Beijing City as an example, five ecological land covers, including water, vegetation, road, building land and bare land, were classified using new classification rules based on the spectral, geometry and texture information in the GF-1 image. The result showed that the urban land covers were accurately identified and its validation accuracy was up to 90%.
机译:城市化进程改变了城市生态用地,从而影响了城市居民的环境质量,获取城市生态用地覆盖信息非常重要。本文提出了一种面向对象的方法,可以从中国“高分一号”(GF-1)卫星获取的多通道图像中提取城市生态土地覆被。以北京市为例,根据GF-1图像中的光谱,几何和纹理信息,使用新的分类规则对水,植被,道路,建筑用地和裸地这5个生态土地覆盖物进行了分类。结果表明,对城市土地覆盖物进行了准确识别,验证精度高达90%。

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