TY - JOUR
T1 - An optimal resolution steering method for geosynchronous orbit SAR
AU - Zhang, Qingjun
AU - Yin, Wei
AU - Ding, Zegang
AU - Zeng, Tao
AU - Long, Teng
PY - 2014/10
Y1 - 2014/10
N2 - For satellites in geosynchronous orbit (GEO) using synthetic aperture radar (SAR), the direction of the satellite velocity vector in the Earth-centered, Earth-fixed (ECEF) coordinate system varies widely in one orbital period. When the velocity vector is approximately parallel to the range direction at equatorial latitudes, the 2-D sidelobes of the generalized ambiguity function (GAF) on the ground are non-orthogonal, which results in a significant deterioration in the ground resolution. To improve the ground resolution, this study investigates an optimal resolution steering (ORS) method for GEO SAR. The ORS method differs from the total zero Doppler steering (TZDS) method, which attempts to minimize the Doppler centroid. In the ORS method, a beam pointing direction is derived based on the constraints of optimal ground resolution. Then, a 2-D roll-pitch strategy is derived to obtain small steering angles, and the beam is steered to the optimal beam pointing direction. Finally, the ORS method is verified with simulations.
AB - For satellites in geosynchronous orbit (GEO) using synthetic aperture radar (SAR), the direction of the satellite velocity vector in the Earth-centered, Earth-fixed (ECEF) coordinate system varies widely in one orbital period. When the velocity vector is approximately parallel to the range direction at equatorial latitudes, the 2-D sidelobes of the generalized ambiguity function (GAF) on the ground are non-orthogonal, which results in a significant deterioration in the ground resolution. To improve the ground resolution, this study investigates an optimal resolution steering (ORS) method for GEO SAR. The ORS method differs from the total zero Doppler steering (TZDS) method, which attempts to minimize the Doppler centroid. In the ORS method, a beam pointing direction is derived based on the constraints of optimal ground resolution. Then, a 2-D roll-pitch strategy is derived to obtain small steering angles, and the beam is steered to the optimal beam pointing direction. Finally, the ORS method is verified with simulations.
KW - Attitude steering
KW - Doppler variance
KW - geosynchronous synthetic aperture radar (GEO SAR)
KW - optimal ground resolution
KW - roll-pitch steering
UR - http://www.scopus.com/inward/record.url?scp=84901296908&partnerID=8YFLogxK
U2 - 10.1109/LGRS.2014.2307167
DO - 10.1109/LGRS.2014.2307167
M3 - Article
AN - SCOPUS:84901296908
SN - 1545-598X
VL - 11
SP - 1732
EP - 1736
JO - IEEE Geoscience and Remote Sensing Letters
JF - IEEE Geoscience and Remote Sensing Letters
IS - 10
M1 - 6785961
ER -