李少东1, 2,
向龙1,
陈文峰1,
杨军1
1.空军预警学院 ??武汉 ??430019
2.中国人民解放军93253部队 ??大连 ??116000
基金项目:国家自然科学基金(61671469)
详细信息
作者简介:向虎:男,1978年生,讲师,研究方向为压缩感知、目标成像与识别
李少东:男,1987年生,博士,研究方向为压缩感知和ISAR成像
向龙:男,1978年生,讲师,研究方向为压缩感知、目标成像与识别
陈文峰:男,1989年生,博士生,研究方向为压缩感知和双基地ISAR成像
杨军:男,1973年生,教授,研究方向为雷达系统、压缩感知和雷达成像
通讯作者:向虎 huker1978@sina.com
中图分类号:TN957.52计量
文章访问数:761
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被引次数:0
出版历程
收稿日期:2018-01-24
修回日期:2018-06-21
网络出版日期:2018-07-16
刊出日期:2018-11-01
Fast High-resolution Imaging Method for Wideband Spinning Targets under Sub-Nyquist Sampling
Hu XIANG1,,,Shaodong LI1, 2,
Long XIANG1,
Wenfeng CHEN1,
Jun YANG1
1. Air Force Early Warning Academy, Wuhan 430019, China
2. Unit 93253, PLA, Dalian 116000, China
Funds:The National Natural Science Foundation of China (61671469)
摘要
摘要:逆合成孔径雷达(ISAR)观测自旋目标时,自旋目标回波的距离-多普勒时变性会导致传统成像方法失效。针对此问题,该文提出一种基于分布式匹配稀疏表示模型的宽带自旋目标快速高分辨成像方法。首先,通过自旋目标回波在距离频域表征出的稀疏性,构建分布式匹配稀疏表示模型;其次,研究快速分布式同步多正交匹配追踪算法,并通过减少算法总的迭代次数和每次迭代运算量来提高算法的重构效率,同时设计相关阈值抑制虚假重构散射点,实现鲁棒成像;最后,从理论上分析该方法在欠采样及低信噪比条件下依然可获得高质量图像的机理。仿真结果证明了该方法的有效性。
关键词:高分辨稀疏成像/
稀疏性/
自旋目标/
欠采样/
低信噪比
Abstract:When using Inverse Synthetic Aperture Radar (ISAR) to observe the spinning targets, the range-Doppler time-varying characteristics of spinning target echo would lead to the inefficiency of traditional imaging methods. To solve this problem, a fast high-resolution imaging method based on distributed matching sparse representation model is proposed for wideband spinning targets imaging. Firstly, a distributed matching sparse representation model is constructed based on the sparsity of spinning target echo. Secondly, a Fast Distributed Simultaneous Multiple Orthogonal Matching Pursuit (FDSMOMP) algorithm is proposed for achieving the fast robust imaging of the spinning parts. The proposed algorithm can significantly improve the reconstruction efficiency by reducing the iteration times and computational complexity of each iteration. Additionally, in order to enhance the robustness of FDSMOMP, a related threshold is designed to suppress the false reconstruction. Finally, the mechanism of the presented method is analyzed theoretically, and it is proved that the high quality imaging result can still be obtained under the conditions of sub-Nyquist sampling and lower (SNR Signal Noise Ratio). Simulation results show the validation of the proposed method.
Key words:High-resolution sparse imaging/
Sparsity/
Spinning target/
Sub-Nyquist sampling/
Low SNR
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