Perspective on satellite-based land data assimilation to estimate water cycle components in an era of advanced data availability and model sophistication

被引:26
作者
De Lannoy, Gabrielle J. M. [1 ]
Bechtold, Michel [1 ]
Albergel, Clement [2 ]
Brocca, Luca [3 ]
Calvet, Jean Christophe [4 ]
Carrassi, Alberto [5 ,6 ,7 ]
Crow, Wade T. [8 ]
de Rosnay, Patricia [9 ]
Durand, Michael [10 ,11 ]
Forman, Barton [12 ]
Geppert, Gernot [13 ]
Girotto, Manuela [14 ]
Franssen, Harrie-Jan Hendricks [15 ]
Jonas, Tobias [16 ]
Kumar, Sujay [17 ]
Lievens, Hans [1 ,18 ]
Lu, Yang [18 ,19 ]
Massari, Christian [3 ]
Pauwels, Valentijn R. N. [20 ]
Reichle, Rolf H. [21 ]
Steele-Dunne, Susan [22 ]
机构
[1] Katholieke Univ Leuven, Dept Earth & Environm Sci, Heverlee, Belgium
[2] European Space Agcy Climate Off, ECSAT, Harwell Campus, Didcot, Oxon, England
[3] CNR, Res Inst Geo Hydrol Protect, Perugia, Italy
[4] Univ Toulouse, CNRS, CNRM, Meteo France, Toulouse, France
[5] Univ Reading, Dept Meteorol, Reading, England
[6] Univ Reading, NCEO, Reading, England
[7] Univ Bologna, Dept Phys & Astron Augusto Righi, Bologna, Italy
[8] USDA ARS, Hydrol & Remote Sensing Lab, Beltsville, MD USA
[9] European Ctr Medium Range Weather Forecasts, Reading, England
[10] Ohio State Univ, Sch Earth Sci, Columbus, OH USA
[11] Ohio State Univ, Byrd Polar & Climate Res Ctr, Columbus, OH USA
[12] Univ Maryland, Dept Civil & Environm Engn, College Pk, MD USA
[13] Deutsch Wetterdienst Data Assimilat & Predictabil, Offenbach, Germany
[14] Univ Calif Berkeley, Environm Sci & Policy Management, Berkeley, CA USA
[15] Forschungszentrum Julich, Agrosphere IBG 3, Julich, Germany
[16] WSL Inst Snow & Avalanche Res SLF, Davos, Switzerland
[17] NASA Goddard Space Flight Ctr, Hydrol Sci Lab, Greenbelt, MD USA
[18] Sun Yat Sen Univ, Sch Civil Engn, Guangzhou, Peoples R China
[19] Sun Yat Sen Univ, Guangdong Engn Technol Res Ctr Water Secur Regula, Guangzhou, Peoples R China
[20] Monash Univ, Dept Civil Engn, Clayton, Vic, Australia
[21] NASA Goddard Space Flight Ctr, Global Modeling & Assimilat Off, Greenbelt, MD USA
[22] Delft Univ Technol, Dept Geosci & Remote Sensing, Delft, Netherlands
来源
FRONTIERS IN WATER | 2022年 / 4卷
基金
欧盟地平线“2020”;
关键词
data assimilation; soil moisture; snow; vegetation; microwave remote sensing; land surface modeling; targeted observations; BRIGHTNESS TEMPERATURE OBSERVATIONS; SOIL-MOISTURE ASSIMILATION; VEGETATION OPTICAL DEPTH; GRACE DATA ASSIMILATION; SNOW DEPTH; LDAS-MONDE; SIMULATION; IMPACT; RETRIEVALS; EQUIVALENT;
D O I
10.3389/frwa.2022.981745
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
The beginning of the 21(st) century is marked by a rapid growth of land surface satellite data and model sophistication. This offers new opportunities to estimate multiple components of the water cycle via satellite-based land data assimilation (DA) across multiple scales. By resolving more processes in land surface models and by coupling the land, the atmosphere, and other Earth system compartments, the observed information can be propagated to constrain additional unobserved variables. Furthermore, access to more satellite observations enables the direct constraint of more and more components of the water cycle that are of interest to end users. However, the finer level of detail in models and data is also often accompanied by an increase in dimensions, with more state variables, parameters, or boundary conditions to estimate, and more observations to assimilate. This requires advanced DA methods and efficient solutions. One solution is to target specific observations for assimilation based on a sensitivity study or coupling strength analysis, because not all observations are equally effective in improving subsequent forecasts of hydrological variables, weather, agricultural production, or hazards through DA. This paper offers a perspective on current and future land DA development, and suggestions to optimally exploit advances in observing and modeling systems.
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页数:14
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