TY - JOUR
T1 - 3-D Tomographic Circular SAR Imaging of Targets Using Scattering Phase Correction
AU - Wu, Kejiang
AU - Shen, Qing
AU - Cui, Wei
N1 - Publisher Copyright:
© 1980-2012 IEEE.
PY - 2023
Y1 - 2023
N2 - Multibaseline circular synthetic aperture radar (C-SAR) tomography is an important three-dimensional (3-D) radar imaging mode since it allows for omni-directional 3-D reconstruction of targets. Typically, this imaging mode splits the full-aperture data into multiple narrow apertures to be processed separately due to the sensitivity to elevation angle and imaging height. However, the repeated one-dimensional (1-D) elevation inversion of all imaged pixels for each sub-aperture also leads to more processing time and more parameter estimation uncertainties. In this article, a new C-SAR tomography framework based on scattering phase correction (SPC) is presented. Our main idea is to use 1-D elevation inversion to estimate the exact height of the distorted scattering points in two-dimensional (2-D) full-aperture image, and derive the imaging height transformation formula. Then these distorted scattering points of different heights are transformed to the proper heights, respectively. As a result, the elevation inversion only needs to be done once for the whole framework and does not need to be done for each sub-aperture. Besides, a combination of two separate processing chains (i.e., fast coherent imaging and slices transform imaging) is used to minimize the 3-D reconstruction errors caused by the imaging height transformation and 1-D elevation inversion. Numerical and outdoor measurement results of real-world complex targets are presented to demonstrate the usefulness of the proposed framework.
AB - Multibaseline circular synthetic aperture radar (C-SAR) tomography is an important three-dimensional (3-D) radar imaging mode since it allows for omni-directional 3-D reconstruction of targets. Typically, this imaging mode splits the full-aperture data into multiple narrow apertures to be processed separately due to the sensitivity to elevation angle and imaging height. However, the repeated one-dimensional (1-D) elevation inversion of all imaged pixels for each sub-aperture also leads to more processing time and more parameter estimation uncertainties. In this article, a new C-SAR tomography framework based on scattering phase correction (SPC) is presented. Our main idea is to use 1-D elevation inversion to estimate the exact height of the distorted scattering points in two-dimensional (2-D) full-aperture image, and derive the imaging height transformation formula. Then these distorted scattering points of different heights are transformed to the proper heights, respectively. As a result, the elevation inversion only needs to be done once for the whole framework and does not need to be done for each sub-aperture. Besides, a combination of two separate processing chains (i.e., fast coherent imaging and slices transform imaging) is used to minimize the 3-D reconstruction errors caused by the imaging height transformation and 1-D elevation inversion. Numerical and outdoor measurement results of real-world complex targets are presented to demonstrate the usefulness of the proposed framework.
KW - Circular synthetic aperture radar (C-SAR) tomography
KW - scattering phase correction (SPC)
KW - three-dimensional (3-D) imaging
UR - http://www.scopus.com/inward/record.url?scp=85178051769&partnerID=8YFLogxK
U2 - 10.1109/TGRS.2023.3333334
DO - 10.1109/TGRS.2023.3333334
M3 - Article
AN - SCOPUS:85178051769
SN - 0196-2892
VL - 61
JO - IEEE Transactions on Geoscience and Remote Sensing
JF - IEEE Transactions on Geoscience and Remote Sensing
M1 - 5221914
ER -