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A STUDY OF THE IMPACT OF INSOLATION ON REMOTE SENSING-BASED LANDCOVER AND LANDUSE DATA EXTRACTION

机译:侵蚀对遥感基础土地和土地利用数据提取的影响研究

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We examined the dependency of the pixel reflectance of hyperspectral imaging spectrometer data (HISD) on a normalized total insolation index (NTII). The NTII was estimated using a light detection and ranging (LiDAR)-derived digital surface model (DSM). The NTII and the pixel reflectance were dependent, to various degrees, on the band considered, and on the properties of the objects. The findings could be used to improve land cover (LC)/land use (LU) classification, using indices constructed from the spectral bands of imaging spectrometer data (ISD). To study this possibility, we investigated the normalized difference vegetation index (NDVI) at various NTII levels. The results also suggest that the dependency of the pixel reflectance and NTII could be used to mitigate the shadows in ISD. This project was carried out using data provided by the Hyperspectral Image Analysis Group and the NSF-funded Centre for Airborne Laser Mapping (NCALM), University of Houston, for the purpose of organizing the 2013 Data Fusion Contest (IEEE 2014). This contest was organized by the IEEE GRSS Data Fusion Technical Committee.
机译:我们检查了高光谱成像光谱仪数据(HIRSD)对归一化总呈现指数(NTII)的依赖性的依赖性。使用光检测和测距(LIDAR)的数字表面模型(DSM)估计NTII。 NTII和像素反射率在考虑的带上以及对象的性质上被依赖于各种度。使用由成像光谱仪数据(ISD)的光谱带构成的指数,可以使用该结果来改善陆地覆盖(LC)/土地使用(LU)分类。为此可能性,我们研究了各种NTII水平的归一化差异植被指数(NDVI)。结果还表明像素反射率和NTII的依赖性可用于减轻ISD中的阴影。该项目是使用高光谱图像分析集团和休斯顿大学的高光谱图像分析组和NSF资助的空中激光测绘中心(NCALM)提供的数据进行的数据,以便组织2013年数据融合竞赛(IEEE 2014)。该比赛由IEEE GRSS数据融合技术委员会组织。

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