DocumentCode
576605
Title
The m-chi decomposition of hybrid dual-polarimetric radar data
Author
Raney, R. Keith ; Cahill, Joshua T S ; Patterson, G. Wesley ; Bussey, D. Benjamin J
Author_Institution
APL, Johns Hopkins Univ., Laurel, MD, USA
fYear
2012
fDate
22-27 July 2012
Firstpage
5093
Lastpage
5096
Abstract
The Mini-RF and Mini-SAR instruments are the first compact polarimetric space-based imaging radars. Their architecture is hybrid-polarimetric, transmitting (quasi-) circular polarization, and receiving orthogonal linear polarizations and their relative phase. The four Stokes parameters that are necessary and sufficient to fully characterize the observed backscattered EM field are calculated from the received linearly polarized data. The Stokes parameters can be used to formulate an m-chi decomposition of the scene, which is a new technique. This method facilitates unambiguous interpretation of surface features according to single (odd) or double (even) bounce signatures in the polarized portion of the reflections, and characterization of the randomly polarized constituents. The m-chi decomposition has proven to be robust in the event that the transmitted field is not perfectly circularly polarized. Analysis of lunar data suggests that an m-chi-psi three-component decomposition strategy should provide additional backscatter classification finesse. These methods are directly applicable to data anticipated from Earth-observing compact-polarimetric radars.
Keywords
geophysical equipment; geophysical techniques; radar polarimetry; remote sensing by radar; synthetic aperture radar; Earth-observing compact-polarimetric radars; Mini-RF instrument; Mini-SAR instrument; Stokes parameters; compact polarimetric space-based imaging radars; hybrid dual-polarimetric radar data; linearly polarized data; m-chi decomposition; m-chi-psi three-component decomposition strategy; orthogonal linear polarizations; quasicircular polarization; randomly polarized constituents; transmitting polarization; Backscatter; Moon; Radar imaging; Radar polarimetry; Spaceborne radar; Synthetic aperture radar;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium (IGARSS), 2012 IEEE International
Conference_Location
Munich
ISSN
2153-6996
Print_ISBN
978-1-4673-1160-1
Electronic_ISBN
2153-6996
Type
conf
DOI
10.1109/IGARSS.2012.6352465
Filename
6352465
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