DocumentCode
21718
Title
Effect of the Polarization Leakage on the SMOS Image Reconstruction Algorithm: Validation Using Ocean Model and In Situ Soil Moisture Data
Author
Khazaal, Ali ; Leroux, Delphine J. ; Cabot, Francois ; Richaume, Philippe ; Anterrieu, Eric
Author_Institution
Centre d´Etudes Spatiales de la Biosphere (CESBIO), Univ. de Toulouse, Toulouse, France
Volume
53
Issue
9
fYear
2015
fDate
Sept. 2015
Firstpage
4961
Lastpage
4971
Abstract
The Soil Moisture and Ocean Salinity (SMOS) mission launched by the European Space Agency in 2009 is devoted to the monitoring of soil moisture and ocean salinity at global scale from L-band spaceborne radiometric observations obtained with a 2-D interferometer. This paper is concerned with the polarization leakage or coupling between SMOS antennas. More precisely, we analyze the impact of the cross-polar antenna patterns on both the image reconstruction procedure and the scene-dependent bias correction. Depending on the level of this coupling, several solutions will be proposed for the retrieval of brightness temperature maps. We will show that the effect of the polarization leakage is relatively small if the interferometric data or correlations are obtained from antennas operating in the same polarization. On the other hand, we will show that the correlations associated to antennas operating in opposite polarizations are highly coupled, and therefore, the polarization leakage should always be considered in the reconstruction. The proposed solutions are compared, over the ocean, to a simulated brightness temperature model and, over the land, to in situ soil moisture data.
Keywords
geophysical image processing; hydrology; image reconstruction; moisture; oceanography; polarisation; radiometry; remote sensing by radar; salinity (geophysical); soil; 2D interferometer; AD 2009; European Space Agency; L-band spaceborne radiometric observation; SMOS antenna; SMOS image reconstruction algorithm; SMOS mission; Soil Moisture and Ocean Salinity Mission; brightness temperature maps; brightness temperature model; cross-polar antenna pattern; in situ soil moisture data; ocean model; ocean salinity monitoring; polarization leakage effect; scene-dependent bias correction; soil moisture monitoring; Antennas; Brightness temperature; Correlation; Couplings; Image reconstruction; Instruments; Oceans; Inverse problems; polarization leakage; radiometry; remote sensing; synthetic aperture imaging;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2015.2414092
Filename
7084164
Link To Document