DocumentCode :
3604160
Title :
A Robust Imaging Algorithm for Squint Mode Multi-Channel High-Resolution and Wide-Swath SAR With Hybrid Baseline and Fluctuant Terrain
Author :
Shuang-Xi Zhang ; Meng-Dao Xing ; Xiang-Gen Xia ; Jianbing Li ; Rui Guo ; Zheng Bao
Author_Institution :
Nat. Key Lab. of Radar Signal Process., Xidian Univ., Xi´an, China
Volume :
9
Issue :
8
fYear :
2015
Firstpage :
1583
Lastpage :
1598
Abstract :
In this paper, the squint mode multi-channel (MC) synthetic aperture radar (SAR) with hybrid baseline and fluctuant terrain is proposed and studied for high-resolution and wide-swath (HRWS) imaging. During the imaging process, due to the cross-track baseline and fluctuant terrain, the azimuth signal reconstruction is the kernel problem for this imaging mode. To deal with this problem, in this paper a robust azimuth signal reconstruction approach is proposed, where terrain elevation of scene is considered. At first, the pre-processing of the linear range cell migration correction (RCMC) and topography-independent phase compensation is implemented in the azimuth time domain. After that, combining the azimuth echo signal characteristics, the local polynomial Fourier transform (LPFT) is utilized to obtain the coarse-focused SAR image. Then, based on joint pixel pair vector and robust Capon beamforming (RCB), a Doppler ambiguity suppression approach is proposed to reconstruct the Doppler ambiguity-free azimuth signal in LPFT frequency domain, during which the influence of the cross-track baseline component and fluctuant terrain is eliminated using the coarse digital elevation model (DEM) for the imaging scene. At last, the chirp scaling imaging algorithm is utilized to focus the SAR image. The effectiveness of the proposed imaging approach is demonstrated via simulated and real measured squint mode MC-HRWS SAR data.
Keywords :
Doppler radar; Fourier transforms; array signal processing; digital elevation models; frequency-domain analysis; polynomials; radar imaging; signal reconstruction; synthetic aperture radar; time-domain analysis; DEM; Doppler ambiguity suppression approach; Doppler ambiguity-free azimuth signal; HRWS imaging; LPFT frequency domain; RCB; azimuth echo signal characteristic; azimuth signal reconstruction; azimuth time domain; chirp scaling imaging algorithm; coarse digital elevation model; coarse-focused SAR image; crosstrack baseline component; fluctuant terrain; high-resolution and wide-swath imaging; hybrid baseline terrain; image processing; joint pixel pair vector; kernel problem; linear RCMC; linear range cell migration correction; local polynomial Fourier transform; robust Capon beamforming; robust imaging algorithm; squint mode multichannel high-resolution wide-swath MC-SAR; terrain elevation; topography-independent phase compensation; Digital elevation models; Doppler effect; Fourier transforms; Radar imaging; Signal reconstruction; Synthetic aperture radar; Doppler ambiguity suppression; Synthetic aperture radar (SAR); digital beam-forming; digital elevation model (DEM); high-resolution and wide-swath (HRWS); local polynomial Fourier transform (LPFT); signal reconstruction;
fLanguage :
English
Journal_Title :
Selected Topics in Signal Processing, IEEE Journal of
Publisher :
ieee
ISSN :
1932-4553
Type :
jour
DOI :
10.1109/JSTSP.2015.2464182
Filename :
7174974
Link To Document :
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