Urban land cover classification based on WorldView-2 image data

Zhiyong Chen, X. Ning, Jixian Zhang
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引用次数: 13

Abstract

Cities hahave a complex construction and easily affected by human activities, so they needsto be surveyed and analyzed timely. WorldView-2 high resolution remote sensing image makes it possible to study the urban land cover classification by its abundant space geometric features and spectral information. This paper would have aimed at given urban land cover types to choose suitable segmentation scales and classification features through object oriented multi-scale segmentation and classification method based on WorldView-2 image data, and extracted the urban land cover types progressively according to reasonable order. Then it raised the NDWI and NDVI which appropriated to extract water and vegetation on WorldView-2 image, and grouped the objects' features after segmentation to extract the roads and buildings hierarchically. The results of accuracy assessment indicated that using this method to study the urban land cover classification based on WorldView-2 image received an ideal effect.
基于WorldView-2影像数据的城市土地覆盖分类
城市结构复杂,容易受到人类活动的影响,需要对其进行及时的调查分析。WorldView-2高分辨率遥感影像丰富的空间几何特征和光谱信息为研究城市土地覆盖分类提供了可能。本文将基于WorldView-2图像数据,通过面向对象的多尺度分割分类方法,针对给定的城市土地覆盖类型选择合适的分割尺度和分类特征,并按照合理的顺序逐步提取城市土地覆盖类型。然后在WorldView-2图像上提出用于提取水体和植被的NDWI和NDVI,并对分割后的目标特征进行分组,分层提取道路和建筑物。精度评价结果表明,利用该方法研究基于WorldView-2影像的城市土地覆盖分类,取得了理想的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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