Estimation of Evapotranspiration and Energy Fluxes using a Deep-Learning based High-Resolution Emissivity Model and the Two-Source Energy Balance Model with sUAS information

被引:8
|
作者
Torres-Rua, Alfonso [1 ]
Ticlavilca, Andres M. [2 ]
Aboutalebi, Mahyar [1 ]
Nieto, Hector [3 ]
Alsina, Maria Mar [4 ]
White, Alex [5 ]
Prueger, John H. [6 ]
Alfieri, Joseph [5 ]
Hipps, Lawrence [1 ]
McKee, Lynn [5 ]
Kustas, William [5 ]
Coopmans, Calvin [1 ]
Dokoozlian, Nick [4 ]
机构
[1] Utah State Univ, Old Main Hill, Logan, UT 84322 USA
[2] Ocean Associates Inc, Santa Rosa, CA 95404 USA
[3] IRTA, Res & Technol Food & Agr, Lleida 25003, Spain
[4] E&J Gallo Winery Viticulture Res, Modesto, CA 95354 USA
[5] ARS, USDA, Hydrol & Remote Sensing Lab, Beltsville, MD 20705 USA
[6] ARS, USDA, Natl Lab Agr & Environm, Ames, IA 50011 USA
关键词
High-resolution evapotranspiration; narrowband emissivity; broadband emissivity; microbolometer camera; deep learning; land surface temperature; UAV; NASA HYTES; UCSB MODIS Emissivity; Landsat; SURFACE-ENERGY; WATER; TEMPERATURE; ALGORITHM;
D O I
10.1117/12.2558824
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Surface temperature is necessary for the estimation of energy fluxes and evapotranspiration from satellites and airborne data sources. For example, the Two-Source Energy Balance (TSEB) model uses thermal information to quantify canopy and soil temperatures as well as their respective energy balance components. While surface (also called kinematic) temperature is desirable for energy balance analysis, obtaining this temperature is not straightforward due to a lack of spatially estimated narrowband (sensor-specific) and broadband emissivities of vegetation and soil, further complicated by spectral characteristics of the UAV thermal camera. This study presents an effort to spatially model narrowband and broadband emissivities for a microbolometer thermal camera at UAV information resolution (similar to 0.15 m) based on Landsat and NASA HyTES information using a deep learning (DL) model. The DL model is calibrated using equivalent optical Landsat / UAV spectral information to spatially estimate narrowband emissivity values of vegetation and soil in the 7-14-nm range at UAV resolution. The resulting DL narrowband emissivity values were then used to estimate broadband emissivity based on a developed narrowband-broadband emissivity relationship using the MODIS UCSB Emissivity Library database. The narrowband and broadband emissivities were incorporated into the TSEB model to determine their impact on the estimation of instantaneous energy balance components against ground measurements. The proposed effort was applied to information collected by the Utah State University AggieAir small Unmanned Aerial Systems (sUAS) Program as part of the ARS-USDA GRAPEX Project (Grape Remote sensing Atmospheric Profile and Evapotranspiration eXperiment) over a vineyard located in Lodi, California. A comparison of resulting energy balance component estimates, with and without the inclusion of high-resolution narrowband and broadband emissivities, against eddy covariance (EC) measurements under different scenarios are presented and discussed.
引用
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页数:15
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