TY - JOUR
T1 - An Improved Polar Format Algorithm With Out-of-Plane Motion Compensation for Earth-Based Radar Imaging of the Moon
AU - Zhang, Guangwei
AU - Ding, Zegang
AU - Li, Zhe
AU - Li, Gen
AU - Zhu, Rui
N1 - Publisher Copyright:
© 2004-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - The polar format algorithm (PFA) is widely regarded as an efficient imaging algorithm, typically performing well when either the out-of-plane motion of the radar is negligible, or the imaging scene is approximately planar. However, in Earth-based radar imaging of the Moon, these conditions are often violated. The unavoidable out-of-plane motion of the radar and the nonplanar terrain of the lunar surface introduce space-variant phase errors that cause geometric distortion and defocus. To address this issue, an improved PFA with out-of-plane motion compensation is proposed in this letter. First, an optimal focus plane is selected to eliminate the linear component of the out-of-plane motion and the resulting geometric distortion errors. Then, based on the mapping relationship of phase errors between the phase history domain and the wavenumber domain, space-variant filters are designed in the azimuth wavenumber domain to efficiently compensate for the space-variant defocus errors in PFA images. Finally, the effectiveness of the proposed algorithm is validated by the results obtained from experimental data.
AB - The polar format algorithm (PFA) is widely regarded as an efficient imaging algorithm, typically performing well when either the out-of-plane motion of the radar is negligible, or the imaging scene is approximately planar. However, in Earth-based radar imaging of the Moon, these conditions are often violated. The unavoidable out-of-plane motion of the radar and the nonplanar terrain of the lunar surface introduce space-variant phase errors that cause geometric distortion and defocus. To address this issue, an improved PFA with out-of-plane motion compensation is proposed in this letter. First, an optimal focus plane is selected to eliminate the linear component of the out-of-plane motion and the resulting geometric distortion errors. Then, based on the mapping relationship of phase errors between the phase history domain and the wavenumber domain, space-variant filters are designed in the azimuth wavenumber domain to efficiently compensate for the space-variant defocus errors in PFA images. Finally, the effectiveness of the proposed algorithm is validated by the results obtained from experimental data.
KW - Earth-based radar
KW - lunar imaging
KW - out-of-plane motion compensation
KW - polar format algorithm (PFA)
UR - https://www.scopus.com/pages/publications/105029951727
U2 - 10.1109/LGRS.2026.3663909
DO - 10.1109/LGRS.2026.3663909
M3 - Article
AN - SCOPUS:105029951727
SN - 1545-598X
VL - 23
JO - IEEE Geoscience and Remote Sensing Letters
JF - IEEE Geoscience and Remote Sensing Letters
M1 - 4004905
ER -