DocumentCode :
872824
Title :
Ionospheric effects for L-band 2-D interferometric radiometry
Author :
Waldteufel, Philippe ; Floury, Nicolas ; Dinnat, Emmanuel P. ; CAUDAL, Gerard
Author_Institution :
IPSL/Service d´´Aeronomie, Centre Nat. de la Recherche Scientifique, Verrieres Le Buisson, France
Volume :
42
Issue :
1
fYear :
2004
Firstpage :
105
Lastpage :
118
Abstract :
Ionospheric effects are a potential error source for the estimation of surface quantities such as sea surface salinity, using L-band radiometry. This study is carried out in the context of the SMOS future space mission, which uses an interferometric radiometer. We first describe the way the Faraday rotation angle due to electron content along the observing path varies across the two-dimensional field of view. Over open ocean surfaces, we show that it is possible to retrieve the total electron content (TEC) at nadir from radiometric data considered over the bulk of the field of view, with an accuracy better than 0.5 TEC units, compatible with requirements for surface salinity observations. Using a full-polarimetric design improves the accuracy on the estimated TEC value. The random uncertainty on retrieved salinity is decreased by about 15% with respect to results obtained when using only data for the first Stokes parameter, which is immune to Faraday rotation. Similarly, TEC values over land surfaces may be retrieved with the accuracy required in the context of soil moisture measurements. Finally, direct TEC estimation provides information which should allow to correct for ionospheric attenuation as well.
Keywords :
ionospheric electromagnetic wave propagation; radiometry; radiowave interferometry; 0.5 TEC units; 2D field of view; 2D interferometric radiometry; Faraday rotation angle; L-band radiometry; SMOS future space mission; Stokes parameter; TEC estimation; electromagnetic propagation; interferometric radiometer; ionospheric attenuation; ionospheric effects; land surfaces; nadir; observing path; open ocean surfaces; radiometric data; random uncertainty; remote sensing; sea surface salinity; soil moisture measurements; surface quantity estimation; total electron content; Content based retrieval; Electrons; Information retrieval; L-band; Land surface; Oceans; Radiometry; Sea surface; Sea surface salinity; Space missions;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2003.817685
Filename :
1262589
Link To Document :
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