DocumentCode
880992
Title
Prediction, Detection, and Correction of Faraday Rotation in Full-Polarimetric L-Band SAR Data
Author
Meyer, Franz J. ; Nicoll, Jeremy B.
Author_Institution
Alaska Satellite Facility, Alaska Fairbanks Univ., Fairbanks, AK
Volume
46
Issue
10
fYear
2008
Firstpage
3076
Lastpage
3086
Abstract
With the synthetic aperture radar (SAR) sensor PALSAR onboard the Advanced Land Observing Satellite, a new full-polarimetric spaceborne L-band SAR instrument has been launched into orbit. At L-band, Faraday rotation (FR) can reach significant values, degrading the quality of the received SAR data. One-way rotations exceeding 25 deg are likely to happen during the lifetime of PALSAR, which will significantly reduce the accuracy of geophysical parameter recovery if uncorrected. Therefore, the estimation and correction of FR effects is a prerequisite for data quality and continuity. In this paper, methods for estimating FR are presented and analyzed. The first unambiguous detection of FR in SAR data is presented. A set of real data examples indicates the quality and sensitivity of FR estimation from PALSAR data, allowing the measurement of FR with high precision in areas where such measurements were previously inaccessible. In examples, we present the detection of kilometer-scale ionospheric disturbances, a spatial scale that is not detectable by ground-based GPS measurements. An FR prediction method is presented and validated. Approaches to correct for the estimated FR effects are applied, and their effectiveness is tested on real data.
Keywords
Faraday effect; electromagnetic wave polarisation; ionospheric disturbances; ionospheric electromagnetic wave propagation; ionospheric techniques; radar polarimetry; radiowave propagation; remote sensing by radar; spaceborne radar; synthetic aperture radar; Advanced Land Observing Satellite; Faraday rotation correction; Faraday rotation detection; Faraday rotation estimation; Faraday rotation prediction; PALSAR; SAR data quality degradation; data continuity; full polarimetric L-band SAR data; geophysical parameter recovery accuracy; kilometer scale ionospheric disturbances; spaceborne L-band SAR instrument; synthetic aperture radar; Area measurement; Degradation; Extraterrestrial measurements; Geophysical measurements; Instruments; L-band; Radar detection; Satellites; Spaceborne radar; Synthetic aperture radar; FR estimation; Faraday rotation (FR) correction; L-band synthetic aperture radar (SAR); ionospheric effects;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2008.2003002
Filename
4637957
Link To Document