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Building a Better Urban Picture: Combining Day and Night Remote Sensing Imagery

机译:打造更好的城市图景:白天和黑夜的遥感影像相结合

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Urban areas play a very important role in global climate change. There is increasing need to understand global urban areas with sufficient spatial details for global climate change mitigation. Remote sensing imagery, such as medium resolution Landsat daytime multispectral imagery and coarse resolution Defense Meteorological Satellite Program/Operational Linescan System (DMSP/OLS) nighttime light imagery, has provided a powerful tool for characterizing and mapping cities, with advantages and disadvantages. Here we propose a framework to merge cloud and cloud shadow-free Landsat Normalized Difference Vegetation Index (NDVI) composite and DMSP/OLS Night Time Light (NTL) to characterize global urban areas at a 30 m resolution, through a Normalized Difference Urban Index (NDUI) to make full use of them while minimizing their limitations. We modify the maximum NDVI value multi-date image compositing method to generate the cloud and cloud shadow-free Landsat NDVI composite, which is critical for generating a global NDUI. Evaluation results show the NDUI can effectively increase the separability between urban areas and bare lands as well as farmland, capturing large scale urban extents and, at the same time, providing sufficient spatial details inside urban areas. With advanced cloud computing facilities and the open Landsat data archives available, NDUI has the potential for global studies at the 30 m scale.
机译:城市地区在全球气候变化中扮演着非常重要的角色。人们越来越需要了解具有足够空间细节的全球城市区域,以缓解全球气候变化。诸如中分辨率Landsat白天多光谱图像和粗糙分辨率的国防气象卫星程序/操作线扫描系统(DMSP / OLS)夜间光图像等遥感图像,提供了用于对城市进行特征和制图的功能强大的工具,既有优势也有劣势。在这里,我们提出了一个框架,用于合并云和无云的Landsat归一化差异植被指数(NDVI)复合材料和DMSP / OLS夜间照明(NTL),以通过归一化差异城市指数来表征30 m分辨率的全球城市区域( NDUI)以充分利用它们,同时最大程度地减少它们的局限性。我们修改了最大NDVI值多日期图像合成方法,以生成云和无云的Landsat NDVI复合图像,这对于生成全局NDUI至关重要。评价结果表明,NDUI可以有效地提高城市与裸地以及农田之间的可分离性,可以捕获大规模的城市范围,同时可以在城市内部提供足够的空间细节。借助先进的云计算设施和开放的Landsat数据档案,NDUI可以进行30 m规模的全球研究。

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