TY - JOUR
T1 - Large-Baseline TomoSAR Imaging Using Range–Elevation Spectrum Scaling
AU - Liang, Junzhao
AU - Wang, Yan
AU - Liu, Changhao
AU - Gao, Anqi
N1 - Publisher Copyright:
© 1980-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - High-resolution tomographic synthetic aperture radar (TomoSAR) 3-D imaging requires a large baseline in elevation to achieve a sufficiently good resolution along the elevation axis. However, the large elevation baseline invalidates the traditional TomoSAR processing framework, which follows a sequence of 2-D imaging, coregistration, and finally elevation imaging. The core difficulty lies in the space-variant slant-range history from the baselines to the targets at different elevations, resulting in those targets being unable to be aligned after coregistration. The error introduced by the coregistration causes a range–elevation migration across multiple 2-D images, yielding defocusing in the 3-D image. In order to address this problem, a range–elevation spectrum scaling (RESS) method is proposed, correcting this migration through decoupling the range–elevation frequency components in the spectrum. First, the range–elevation migration is analyzed across the 2-D images according to the mapping from 3-D position onto 2-D images of the targets in the scenario. Second, the phase history and range–elevation spectrum are derived, and then the scaling method for migration correction is applied. After elevation focusing on the migration-corrected data, the 3-D image is distorted due to the incident angle variance of the scene, and finally, the space-variant distortion of the proposed RESS method is analyzed and corrected. The simulations and real unmanned aerial vehicle (UAV) experiments verify the effectiveness of the RESS.
AB - High-resolution tomographic synthetic aperture radar (TomoSAR) 3-D imaging requires a large baseline in elevation to achieve a sufficiently good resolution along the elevation axis. However, the large elevation baseline invalidates the traditional TomoSAR processing framework, which follows a sequence of 2-D imaging, coregistration, and finally elevation imaging. The core difficulty lies in the space-variant slant-range history from the baselines to the targets at different elevations, resulting in those targets being unable to be aligned after coregistration. The error introduced by the coregistration causes a range–elevation migration across multiple 2-D images, yielding defocusing in the 3-D image. In order to address this problem, a range–elevation spectrum scaling (RESS) method is proposed, correcting this migration through decoupling the range–elevation frequency components in the spectrum. First, the range–elevation migration is analyzed across the 2-D images according to the mapping from 3-D position onto 2-D images of the targets in the scenario. Second, the phase history and range–elevation spectrum are derived, and then the scaling method for migration correction is applied. After elevation focusing on the migration-corrected data, the 3-D image is distorted due to the incident angle variance of the scene, and finally, the space-variant distortion of the proposed RESS method is analyzed and corrected. The simulations and real unmanned aerial vehicle (UAV) experiments verify the effectiveness of the RESS.
KW - Large baseline
KW - spectrum scaling
KW - tomographic synthetic aperture radar (TomoSAR)
UR - https://www.scopus.com/pages/publications/105044728912
U2 - 10.1109/TGRS.2026.3711987
DO - 10.1109/TGRS.2026.3711987
M3 - Article
AN - SCOPUS:105044728912
SN - 0196-2892
VL - 64
JO - IEEE Transactions on Geoscience and Remote Sensing
JF - IEEE Transactions on Geoscience and Remote Sensing
M1 - 5213118
ER -