Evaluation of a generalized linear model for the actual evapotranspiration using satellite and reanalysis data

M. G. Adán Faramiñán, Cristian Laino, Facundo Carmona, M. Holzman, R. Rivas
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引用次数: 0

Abstract

An important issue for agricultural planning is to estimate evapotranspiration accurately due to its fundamental role in sustainable use of water resources. It is essential to have reliable and precise evapotranspiration (ET) measurements to improve models or products. This work aims to evaluate a generalized linear model (GLM) in order to estimate actual evapotranspiration of barley crop with satellite (Landsat, Sentinel, and CERES) and reanalysis (MERRA-2) data. The results obtained were compared with water balance values from an agrometeorological station. The GLM with the combination of MERRA-2/CERES/Sentinel 2 as input was the best performance (R2 = 0.59). The results show the feasibility of applying machine learning algorithms for obtaining actual evapotranspiration values in agricultural plains without ground agro-meteorological data.
利用卫星和再分析资料评估实际蒸散发的广义线性模型
由于蒸散发在水资源可持续利用中的基础性作用,准确估算蒸散发是农业规划的一个重要问题。可靠和精确的蒸散发(ET)测量对于改进模型或产品至关重要。本文旨在利用卫星(Landsat、Sentinel和CERES)和MERRA-2再分析数据评估大麦作物实际蒸散量的广义线性模型(GLM)。所得结果与某农业气象站的水平衡值进行了比较。以MERRA-2/CERES/Sentinel 2组合为输入的GLM效果最佳(R2 = 0.59)。结果表明,在没有地面农业气象数据的情况下,应用机器学习算法获取农业平原实际蒸散发值是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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