Knowledge Resource Center for Ecological Environment in Arid Area
DOI | 10.5194/hess-17-1079-2013 |
Improving operational land surface model canopy evapotranspiration in Africa using a direct remote sensing approach | |
Marshall, M.1; Tu, K.2; Funk, C.1; Michaelsen, J.1; Williams, P.1; Williams, C.3; Ardo, J.4; Boucher, M.5; Cappelaere, B.5; de Grandcourt, A.6,7; Nickless, A.8; Nouvellon, Y.6,7; Scholes, R.8; Kutsch, W.9 | |
通讯作者 | Marshall, M. |
来源期刊 | HYDROLOGY AND EARTH SYSTEM SCIENCES
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ISSN | 1027-5606 |
EISSN | 1607-7938 |
出版年 | 2013 |
卷号 | 17期号:3页码:1079-1091 |
英文摘要 | Climate change is expected to have the greatest impact on the world’s economically poor. In the Sahel, a climatically sensitive region where rain-fed agriculture is the primary livelihood, expected decreases in water supply will increase food insecurity. Studies on climate change and the intensification of the water cycle in sub-Saharan Africa are few. This is due in part to poor calibration of modeled evapotranspiration (ET), a key input in continental-scale hydrologic models. In this study, a remote sensing model of transpiration (the primary component of ET), driven by a time series of vegetation indices, was used to substitute transpiration from the Global Land Data Assimilation System realization of the National Centers for Environmental Prediction, Oregon State University, Air Force, and Hydrology Research Laboratory at National Weather Service Land Surface Model (GNOAH) to improve total ET model estimates for monitoring purposes in sub-Saharan Africa. The performance of the hybrid model was compared against GNOAH ET and the remote sensing method using eight eddy flux towers representing major biomes of sub-Saharan Africa. The greatest improvements in model performance were at humid sites with dense vegetation, while performance at semi-arid sites was poor, but better than the models before hybridization. The reduction in errors using the hybrid model can be attributed to the integration of a simple canopy scheme that depends primarily on low bias surface climate reanalysis data and is driven primarily by a time series of vegetation indices. |
类型 | Article |
语种 | 英语 |
国家 | USA ; Sweden ; France ; Rep Congo ; South Africa ; Germany |
收录类别 | SCI-E |
WOS记录号 | WOS:000316961300015 |
WOS关键词 | ATMOSPHERE WATER FLUX ; SEMIARID ENVIRONMENTS ; DATA ASSIMILATION ; USE EFFICIENCY ; EVAPORATION ; ALGORITHM ; SAVANNA ; SYSTEM ; MODIS ; PHOTOSYNTHESIS |
WOS类目 | Geosciences, Multidisciplinary ; Water Resources |
WOS研究方向 | Geology ; Water Resources |
来源机构 | French National Research Institute for Sustainable Development ; University of California, Berkeley |
资源类型 | 期刊论文 |
条目标识符 | http://119.78.100.177/qdio/handle/2XILL650/177555 |
作者单位 | 1.UC Santa Barbara, Climate Hazards Grp, Dept Geog, Santa Barbara, CA USA; 2.Univ Calif Berkeley, Dept Integrat Biol, Berkeley, CA USA; 3.Clark Univ, Dept Geog, Worcester, MA 01610 USA; 4.Lund Univ, Dept Earth & Ecosyst Sci, Div Phys Geog & Ecosyst Anal, S-22362 Lund, Sweden; 5.Inst Rech Dev, HydroSci, F-34394 Montpellier 5, France; 6.CIRAD, Persyst, UPR80, F-34398 Montpellier 5, France; 7.CRDPI, Pointe Noire, Rep Congo; 8.CSIR, ZA-0001 Pretoria, South Africa; 9.Inst Agr Climate Res, Johann Heinrich von Thunen Inst, D-38116 Braunschweig, Germany |
推荐引用方式 GB/T 7714 | Marshall, M.,Tu, K.,Funk, C.,et al. Improving operational land surface model canopy evapotranspiration in Africa using a direct remote sensing approach[J]. French National Research Institute for Sustainable Development, University of California, Berkeley,2013,17(3):1079-1091. |
APA | Marshall, M..,Tu, K..,Funk, C..,Michaelsen, J..,Williams, P..,...&Kutsch, W..(2013).Improving operational land surface model canopy evapotranspiration in Africa using a direct remote sensing approach.HYDROLOGY AND EARTH SYSTEM SCIENCES,17(3),1079-1091. |
MLA | Marshall, M.,et al."Improving operational land surface model canopy evapotranspiration in Africa using a direct remote sensing approach".HYDROLOGY AND EARTH SYSTEM SCIENCES 17.3(2013):1079-1091. |
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