DocumentCode :
54349
Title :
Robust Clutter Suppression and Moving Target Imaging Approach for Multichannel in Azimuth High-Resolution and Wide-Swath Synthetic Aperture Radar
Author :
Shuang-Xi Zhang ; Meng-Dao Xing ; Xiang-Gen Xia ; Rui Guo ; Yan-Yang Liu ; Zheng Bao
Author_Institution :
Nat. Key Lab. of Radar Signal Process., Xidian Univ., Xi´an, China
Volume :
53
Issue :
2
fYear :
2015
fDate :
Feb. 2015
Firstpage :
687
Lastpage :
709
Abstract :
This paper describes a clutter suppression approach and the corresponding moving target imaging algorithm for a multichannel in azimuth high-resolution and wide-swath (MC-HRWS) synthetic aperture radar (SAR) system. Incorporated with digital beamforming processing, MC-HRWS SAR systems are able to suppress the Doppler ambiguities to allow for HRWS SAR imaging and null the clutter directions to suppress clutter for ground moving target indication. In this paper, the degrees of freedom in azimuth for the multichannel SAR systems are employed to implement clutter suppression. First, the clutter and moving target echoes are transformed into the range compression and azimuth chirp Fourier transform frequency domain, i.e., coarse-focused images formation, when the clutter echoes are with azimuth Doppler ambiguity. Considering that moving targets are sparse in the imaging scene and that there is a difference between clutter and a moving target in the spatial domain, a series of spatial domain filters are constructed to extract moving target echoes. Then, using an extracted moving target echo, two groups of signals are formed, and slant-range velocity of a moving target can be estimated based on baseband Doppler centroid estimation algorithm and multilook cross-correlation Doppler centroid ambiguity number resolving approach. After the linear range cell migration correction and azimuth focus processing, a well-focused moving target image can be obtained. In addition, the proposed clutter suppression and imaging approach is not only adapted for uniformly displaced phase center sampling but also for the nonuniform sampling cases. Some simulation experiments are taken to demonstrate our proposed algorithms. Finally, some real measured data results are presented to validate the theoretical investigations and the proposed approaches.
Keywords :
Doppler radar; Fourier transforms; array signal processing; chirp modulation; feature extraction; frequency-domain analysis; ground penetrating radar; image resolution; image sampling; interference suppression; object detection; radar clutter; radar detection; radar imaging; spatial filters; synthetic aperture radar; Doppler ambiguity suppression; MC-HRWS SAR system; azimuth chirp Fourier transform frequency domain; azimuth focus processing; azimuth high resolution imaging; baseband Doppler centroid estimation algorithm; cross-correlation Doppler centroid ambiguity number resolving approach; degree of freedom; digital beamforming processing; ground moving target indication; imaging scene; linear range cell migration correction; moving target echo extraction; moving target estimation; moving target imaging approach; multichannel SAR system; nonuniform sampling; phase center sampling; range compression; robust clutter suppression; spatial domain filters; wide swath synthetic aperture radar; Azimuth; Clutter; Doppler effect; Geometry; Imaging; Radar imaging; Synthetic aperture radar; Chirp Fourier transform (CFT); Doppler ambiguity; Doppler centroid estimation; digital beamforming; ground moving target indication (GMTI); high resolution and wide swath (HRWS); nonuniform sampling; slant-range velocity estimation; synthetic aperture radar (SAR);
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2014.2327031
Filename :
6835178
Link To Document :
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