DocumentCode :
84771
Title :
A Semi-Empirical Model for Computing Land Surface Emissivity in the Microwave Region
Author :
Ringerud, Sarah ; Kummerow, Christian D. ; Peters-Lidard, Christa D.
Author_Institution :
Colorado State Univ., Fort Collins, CO, USA
Volume :
53
Issue :
4
fYear :
2015
fDate :
Apr-15
Firstpage :
1935
Lastpage :
1946
Abstract :
In an effort to better simulate land surface microwave emissivity, a semi-empirical technique is developed and tested over the U.S. Southern Great Plains (SGP) area. A physical model is used to calculate emissivity at the 10-GHz frequency, combining contributions from the underlying soil and vegetation layers, including the dielectric and roughness effects of each medium. Adjustments are added for post-precipitation surface water effects on emissivity of the soil and water-coated vegetation emissivity. A five-year data set of retrieved emissivities from the Advanced Microwave Scanning Radiometer-Earth Observing System (AMSR-E) during clear-sky conditions is employed for calculation of a robust set of channel covariances. These covariances, combined with the modeled 10-GHz emissivities, provide emissivity values for each AMSR-E channel, which are then used to compute top of the atmosphere brightness temperatures Tbs. Results comparing these calculated Tbs to observed AMSR-E values show correlations of 0.85-0.93 and biases generally less than 1 K, with the largest bias appearing in the highest AMSR-E frequency. Such a modeling system could be easily implemented for the emissivity calculation required for atmospheric retrievals over similar land surfaces.
Keywords :
atmospheric boundary layer; atmospheric precipitation; emissivity; microwave measurement; remote sensing; soil; vegetation; AMSR-E; Advanced Microwave Scanning Radiometer Earth Observing System; Southern Great Plains area; USA; channel covariances; clear sky conditions; dielectric effects; emissivity calculation; frequency 10 GHz; land surface microwave emissivity; physical model; post precipitation surface water effects; roughness effects; semiempirical model; soil emissivity; soil layer; top of the atmosphere brightness temperatures; vegetation layer; water coated vegetation emissivity; Atmospheric modeling; Computational modeling; Data models; Land surface; Land surface temperature; Soil moisture; Emissivity; land surface; passive microwave remote sensing;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2014.2351232
Filename :
6909042
Link To Document :
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