Title :
WindSat Global Soil Moisture Retrieval and Validation
Author :
Li, Li ; Gaiser, Peter W. ; Gao, Bo-Cai ; Bevilacqua, Richard M. ; Jackson, Thomas J. ; Njoku, Eni G. ; Rüdiger, Christoph ; Calvet, Jean-Christophe ; Bindlish, Rajat
Author_Institution :
Naval Res. Lab., Washington, DC, USA
fDate :
5/1/2010 12:00:00 AM
Abstract :
A physically based six-channel land algorithm is developed to simultaneously retrieve global soil moisture (SM), vegetation water content (VWC), and land surface temperature. The algorithm is based on maximum-likelihood estimation and uses dual-polarization WindSat passive microwave data at 10, 18.7, and 37 GHz. The global retrievals are validated at multispatial and multitemporal scales against SM climatologies, in situ network data, precipitation patterns, and Advanced Very High Resolution Radiometer (AVHRR) vegetation data. In situ SM observations from the U.S., France, and Mongolia for diverse land/vegetation cover were used to validate the results. The performance of the estimated volumetric SM was within the requirements for most science and operational applications (standard error of 0.04 m3/m3, bias of 0.004 m3/m3, and correlation coefficient of 0.89). The retrieved SM and VWC distributions are very consistent with global climatology and mesoscale precipitation patterns. The comparisons between the WindSat vegetation retrievals and the AVHRR Green Vegetation Fraction data also reveal the consistency of these two independent data sets in terms of spatial and temporal variations.
Keywords :
data acquisition; hydrological techniques; land surface temperature; maximum likelihood estimation; microwave measurement; moisture measurement; radiometry; soil; vegetation; vegetation mapping; AVHRR Green Vegetation Fraction data; AVHRR vegetation data; Advanced Very High Resolution Radiometer; climatology; correlation coefficient; dual-polarization WindSat passive microwave data; frequency 10 GHz; frequency 18.7 GHz; frequency 37 GHz; global soil moisture retrieval; global soil moisture validation; land cover; land surface temperature; maximum-likelihood estimation; mesoscale precipitation pattern; six-channel land algorithm; vegetation cover; vegetation water content; Hydrology; land surface temperature; passive microwave remote sensing; soil moisture; vegetation;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2009.2037749