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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Global Estimates for High-Spatial-Resolution Clear-Sky Land Surface Upwelling Longwave Radiation From MODIS Data
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Global Estimates for High-Spatial-Resolution Clear-Sky Land Surface Upwelling Longwave Radiation From MODIS Data

机译:基于MODIS数据的高空间分辨率晴朗天空陆地表面上行长波辐射的全球估计

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摘要

Surface upwelling longwave radiation (LWUP) is a vital component in calculating the Earth's surface radiation budget. Under the general framework of the hybrid method, we developed linear and dynamic learning neural network (DLNN) models for estimating the global 1-km instantaneous clear-sky LWUP from the top-of-atmosphere radiance of Moderate Resolution Imaging Spectroradiometer thermal infrared channels 29, 31, and 32. Extensive radiative transfer simulations were conducted to produce a large number of representative samples, from which the linear model and DLNN model were derived. These two hybrid models were evaluated using ground measurements collected at 19 sites from three networks (SURFRAD, ASRCOP, and GAME-AAN). According to the validation results, the linear model was more accurate than the DLNN model, with a bias and root-mean-square error (RMSE) of −0.31 W/m2 and 19.92 W/m2 obtained by averaging the mean bias and RMSE for the three networks. Additionally, the computational efficiency of the linear model was much higher than that of the DLNN model. We also compared our linear model to a hybrid method developed by a previous study and found ours to perform better.
机译:地面上升流长波辐射(LWUP)是计算地球表面辐射预算的重要组成部分。在混合方法的总体框架下,我们开发了线性和动态学习神经网络(DLNN)模型,用于从中等分辨率成像光谱仪热红外通道的大气顶部辐射估算全球1 km瞬时晴空LWUP 29 ,分别为31和32。进行了广泛的辐射转移模拟,以产生大量的代表性样本,并由此得出了线性模型和DLNN模型。使用从三个网络(SURFRAD,ASRCOP和GAME-AAN)的19个站点收集的地面测量值评估了这两种混合模型。根据验证结果,线性模型比DLNN模型更准确,其偏差和均方根误差(RMSE)分别为-0.31 W / m2和19.92 W / m2,这是通过对三个网络。此外,线性模型的计算效率远高于DLNN模型。我们还将线性模型与先前研究开发的混合方法进行了比较,发现我们的模型表现更好。

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