西安电子科技大学雷达信号处理国家重点实验室,西安,710071
网络首发:2014-12-10,
纸质出版:2014
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董祺, 张磊, 徐刚, 等. 采用子孔径分割的逆合成孔径雷达成像包络对齐方法[J]. 西安交通大学学报, 2014,48(12):107-112+139.
Envelope Alignment Algorithm for Inverse Synthetic Aperture Radar Imaging Based on Splitting Sub-Apertures[J]. 2014, 48(12): 107-112+139.
董祺, 张磊, 徐刚, 等. 采用子孔径分割的逆合成孔径雷达成像包络对齐方法[J]. 西安交通大学学报, 2014,48(12):107-112+139. DOI: 10.7652/xjtuxb201412017.
Envelope Alignment Algorithm for Inverse Synthetic Aperture Radar Imaging Based on Splitting Sub-Apertures[J]. 2014, 48(12): 107-112+139. DOI: 10.7652/xjtuxb201412017.
针对低信噪比情况下难以对逆合成孔径雷达(ISAR)目标回波进行精确包络对齐的问题
提出了一种采用子孔径分割的逆合成孔径雷达成像包络对齐方法。该方法首先将全孔径划分为若干个相同长度的子孔径
并将每个子孔径的包络误差建模为线性
然后利用最小熵准则对子孔径包络误差进行估计
最后通过高阶多项式拟合实现对全孔径包络误差的精确估计。该方法具有更好的抗噪性和更高的估计精度
能对ISAR目标回波数据进行较为精确的包络误差补偿。仿真结果表明
在-5 dB的低输入信噪比下
相对于传统方法
该方法成像结果的熵值降低了约0.6
说明取得了更好的包络对齐结果。
A novel envelope alignment algorithm based on splitting sub-apertures is proposed to improve the problem that it is hard for the envelope alignment to be accurately carried out under the condition of low signal to noise ratio(SNR)in inverse synthetic aperture radar(ISAR). The full-aperture is divided into several sub-apertures with same length
and a linear model is built for envelope error of each sub-aperture. The minimum entropy criterion is used to estimate the envelope error of each sub-aperture. Then a high-order polynomial is used to fit the full-aperture envelope errors
and estimations of sub-apertures are used to successfully achieve the final envelope alignment precisely. Simulation results and comparisons with the traditional envelope alignment algorithms show that the proposed method has advantages in envelope alignment
and the entropy of imaging results reduces by about 0.6 when the input SNR is as severe as -5 dB.
XU J, LI G, PENG Y N. Parametric velocity synthetic aperture radar: signal modeling and optimal methods[J]. IEEE Transactions on Geoscience and Remote Sensing, 2008, 46(9): 2463-2478.
WANG Junfeng, LIU Xingzhao. Improved global range alignment for ISAR[J]. IEEE Transactions on Aerospace Electronic Systems, 2007, 43(3): 1070-1075.
CHEN C C, REWS H C. Target-motion-induced radar imaging[J]. IEEE Transactions on Aerospace Electronic Systems, 1980, 16(1): 2-14.
DELISLE G Y, WU H Q. Moving target imaging and trajectory computation using ISAR[J]. IEEE Transactions on Aerospace Electronic Systems, 1994, 30(3): 887-899.
保铮, 邢孟道, 王彤, 等. 雷达成像技术[M]. 北京: 电子工业出版社, 2005.
ZHANG S H, LIU Y X, LI X. Pseudomatched-filter-based ISAR imaging under low SNR condition[J]. IEEE Geoscience and Remote Sensing Letters, 2014, 11(7): 1240-1244.
APRILE A, MELEDANDRI D, PELLIZZERI T M, et al. Translational rotational motion compensation: a single algorithm for different radar imaging applications[J]. IET Signal Processing, 2008, 2(3): 204-215.
YE W, YEO T S, BAO Y. Weighted least-squares estimation of phase errors for SAR/ISAR autofocus[J]. IEEE Transactions on Geoscience and Remote Sensing, 1999, 37(5): 2487-2494.
ZHANG L, LI H L, QIAO Z, et al. Integrating autofocus techniques with fast factorized back-projection for high-resolution spotlight SAR imaging[J]. IEEE Geoscience and Remote Sensing Letters, 2013, 10(6): 1394-1398.
徐刚, 张磊, 陈倩倩, 等. 基于稀疏约束最优化的ISAR相位自聚焦成像算法[J]. 电子学报, 2013(9): 1772-1777.
XU Gang, ZHANG Lei, CHEN Qianqian, et al. Novel autofocusing algorithm for ISAR imaging based on sparse constraint[J]. Chinese Journal of Electronics, 2013(9): 1772-1777.
WANG J F, LIU X Z. SAR minimum-entropy autofocus using an adaptive-order polynomial model[J]. IEEE Geoscience and Remote Sensing Letters, 2006, 3(4): 512-516.
邢孟道, 保铮. 一种逆合成孔径雷达成像包络对齐的新方法[J]. 西安电子科技大学学报, 2000, 27(1): 93-97.XING Mengdao, BAO Zheng. A new method for the range alignment in ISAR imaging[J]. Journal of Xidian University, 2000, 27(1): 93-97.
ZHU D Y, WANG L, YU Y S, et al. Robust ISAR range alignment via minimizing the entropy of average range profile[J]. IEEE Geoscience and Remote Sensing Letters, 2009, 6(2): 204-208.
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