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Autonomous atmospheric compensation (AAC) of high resolution hyperspectral thermal infrared remote-sensing imagery

机译:高分辨率高光谱热红外遥感影像的自主大气补偿(AAC)

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Atmospheric emission and absorption significantly modify the thermal infrared (TIR) radiation spectra from Earth's land surface. A new algorithm, autonomous atmospheric compensation (AAC), was developed to estimate and compensate for the atmospheric effects. The algorithm estimates from hyperspectral TIR measurements two atmospheric index parameters, the transmittance ratio, and the path radiance difference between strong and weak absorption channels near the 11.73 /spl mu/m water band. These two parameters depend on the atmospheric water and temperature distribution profiles, and thus, from them, the complete atmospheric transmittance and path radiance spectra can be predicted. The AAC algorithm is self-contained and needs no supplementary data. Its accuracy depends largely on instrument characteristics, particularly spectral and spatial resolution. Atmospheric conditions, especially humidity and temperature, and other meteorological parameters, also have some secondary impacts. The AAC algorithm was successfully applied to a hyperspectral TIR data set, and the results suggest its accuracy is comparable to that based on the in situ radiosonde measurements.
机译:大气的发射和吸收会显着改变地球陆地表面的热红外(TIR)辐射光谱。开发了一种新的算法,即自主大气补偿(AAC),以估算和补偿大气效应。该算法从高光谱TIR测量值中估算出两个大气指数参数,透射比以及在11.73 / spl mu / m水带附近的强吸收通道和弱吸收通道之间的路径辐射差。这两个参数取决于大气中的水和温度分布曲线,因此,从中可以预测出完整的大气透射率和路径辐射光谱。 AAC算法是独立的,不需要补充数据。其准确性在很大程度上取决于仪器的特性,尤其是光谱和空间分辨率。大气条件,尤其是湿度和温度,以及其他气象参数,也有一些次要影响。 AAC算法已成功应用于高光谱TIR数据集,结果表明其准确性与基于原位探空仪测量的准确性相当。

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