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Below-Cloud Atmospheric Correction of Airborne Hyperspectral Imagery Using Simultaneous Solar Spectral Irradiance Observations

机译:使用同声太阳光谱辐照度观测,云云大气矫正空气传播高光谱图像

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Retrieving surface properties from airborne hyperspectral imagery requires the use of an atmospheric correction model to compensate for atmospheric scattering and absorption. In this study, a solar spectral irradiance monitor (SSIM) from the University of Colorado Boulder was flown on a Twin Otter aircraft with the National Ecological Observatory Network’s (NEON) imaging spectrometer. Upwelling and downwelling irradiance observations from the SSIM were used as boundary conditions for the radiative transfer model used to atmospherically correct NEON imaging spectrometer data. Using simultaneous irradiance observations as boundary conditions removed the need to model the entire atmospheric column so that atmospheric correction required modeling only the atmosphere below the aircraft. For overcast conditions, incorporating SSIM observations into the atmospheric correction process reduced root-mean-square (rms) error in retrieved surface reflectance by up to 57% compared with a standard approach. In addition, upwelling irradiance measurements were used to produce an observation-based estimate of the adjacency effect. Under cloud-free conditions, this correction reduced the rms error of surface reflectance retrievals by up to 27% compared with retrievals that ignored adjacency effects.
机译:从机载高光谱图像检索表面特性需要使用大气校正模型来补偿大气散射和吸收。在本研究中,来自科罗拉多大学博尔德大学的太阳光谱辐照度监测仪(SSIM)在与国家生态天文台网络(霓虹灯)成像光谱仪的双獭飞机上飞行。从SSIM的升高和沉船辐照度观测用作用于大气校正霓虹影像光谱仪数据的辐射转移模型的边界条件。使用同时辐照度观察作为边界条件消除了模拟整个大气柱的需要,使大气校正仅需要建模飞机下方的气氛。对于过度的条件,将SSIM观察到大气校正处理减少了在与标准方法相比,在检出的表面反射率下降到57%的根均线(RMS)误差。此外,使用升温辐照度测量来产生基于观察的邻接效应的估计。在无云条件下,与忽略邻接效应的检索相比,该校正将表面反射率检索的RMS误差降低了高达27%。

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