一种基于信杂噪比准则的SAR波形和成像滤波器联合设计方法

张家伟 孙婕 徐华平 李小龙

张家伟, 孙婕, 徐华平, 等. 一种基于信杂噪比准则的SAR波形和成像滤波器联合设计方法[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR26117
引用本文: 张家伟, 孙婕, 徐华平, 等. 一种基于信杂噪比准则的SAR波形和成像滤波器联合设计方法[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR26117
ZHANG Jiawei, SUN Jie, XU Huaping, et al. Joint design of SAR waveform and imaging filter based on the signal-to-clutter-plus-noise ratio criterion[J]. Journal of Radars, in press. doi: 10.12000/JR26117
Citation: ZHANG Jiawei, SUN Jie, XU Huaping, et al. Joint design of SAR waveform and imaging filter based on the signal-to-clutter-plus-noise ratio criterion[J]. Journal of Radars, in press. doi: 10.12000/JR26117

一种基于信杂噪比准则的SAR波形和成像滤波器联合设计方法

DOI: 10.12000/JR26117 CSTR: 32380.14.JR26117
基金项目: 国家自然科学基金( U2241202),河北省自然科学基金(F2026203047)
详细信息
    作者简介:

    张家伟,博士,副教授,主要研究方向为合成孔径雷达成像处理、雷达波形设计和最优化算法等

    孙 婕,硕士研究生,主要研究方向为雷达波形设计

    徐华平,教授,博士生导师,主要研究方向为微波成像雷达新体制、成像处理和图像处理等

    李小龙,教授,博士生导师,主要研究方向为机动目标探测、微弱目标检测跟踪和分布式雷达探测技术等

    通讯作者:

    徐华平 xuhuaping@buaa.edu.cn

    李小龙 xiaolongli@uestc.edu.cn

    责任主编:王伟 Corresponding Editor: WANG Wei

  • 中图分类号: TN951

Joint Design of SAR Waveform and Imaging Filter Based on the Signal-to-Clutter-Plus-Noise Ratio Criterion

Funds: The National Natural Science Foundation of China (U2241202), The Hebei Natural Science Foundation (F2026203047)
More Information
  • 摘要: 针对合成孔径雷达(SAR)在弱目标成像时目标回波信号易被背景杂波淹没的问题,该文提出了一种基于信杂噪比准则的SAR波形与成像滤波器联合设计方法。该方法首先建立以信杂噪比为目标函数的联合优化模型,综合考虑了恒模、主瓣峰值、旁瓣电平及目标散射不确定性等约束条件,形成了具有极大极小结构的非凸多约束优化问题。为求解该复杂非凸恒模问题,该文发展了一种序贯交替迭代框架,将原问题分解为波形与滤波器两个子问题,采用上镜图变换与MM算法相结合的策略,实现分式目标函数解耦和非凸约束条件转化;通过引入辅助变量以扩展可行域,保证初始迭代时的可行性,再添加随迭代次数递增的惩罚项,最终迫使辅助变量趋于零,实现原始问题的求解,并从理论上分析了算法的收敛性和计算复杂度。实验结果表明:与同参数的线性调频信号相比,联合设计方案在仿真、半物理及外场真实试验中均表现出显著的杂波抑制能力,SAR图像的信杂比可提升3.2 dB以上,为改善SAR系统对弱目标的探测与成像性能提供了工程可行的技术途径。

     

  • 图  1  迭代循环$ {\mathcal{L}}_{2} $与$ {\mathcal{L}}_{3} $中目标函数值及其下限随迭代次数的变化情况

    Figure  1.  Change of the objective function and its lower limit with respect to the iteration number in $ {\mathcal{L}}_{2} $ and $ {\mathcal{L}}_{3} $

    图  2  $ {\mathcal{L}}_{2} $中松弛变量$ ||\boldsymbol{u}|{|}_{1} $随迭代次数m的变化情况

    Figure  2.  Change in the slack variable $ ||\boldsymbol{u}|{|}_{1} $ with respect to the iteration number m in $ {\mathcal{L}}_{2} $

    图  3  目标函数值随迭代次数k变化

    Figure  3.  Convergence comparison of the objective function with respect to the iteration numberk

    图  4  不同初值下的目标函数序列

    Figure  4.  Objective function sequences generated from different initial values

    图  5  不同参数取值下CCF的比较

    Figure  5.  Comparison of CCF under different parameter values

    图  6  优化波形的实部、虚部、时频关系

    Figure  6.  Real and imaginary parts of proposed waveform, as well as time-frequency characteristics

    图  7  舰船目标模型

    Figure  7.  Ship models

    图  8  不同波形的SAR图像

    Figure  8.  SAR images with different waveforms.

    图  9  不同背景强度下的SCR

    Figure  9.  SCRs with different background scattering

    图  10  目标模型和不同波形的SAR图像

    Figure  10.  Target models and SAR images with different waveforms

    图  11  任意相位编码信号SAR硬件平台

    Figure  11.  Arbitrary phase-coded signal SAR hardware platform

    图  12  参考波形与硬件回传信号对比

    Figure  12.  The comparison between the reference signal and the hardware-returned signal

    图  13  外场试验目标

    Figure  13.  Target of field experiment

    图  14  外场试验SAR成像结果

    Figure  14.  SAR images of the field experiment

    1  联合优化算法

    1.   Joint optimization algorithm

     设置参数:$ {E}_{0} $,$ \delta $,e,$ {e}^{\prime} $,$ \varepsilon $,$ {\tau }_{0} $,$ {\lambda }^{(0)} $和$ \omega $。
     1:初始化$ {\boldsymbol{x}}_{(0)} $和$ {\boldsymbol{w}}_{(0)} $,设置迭代索引$ k=1 $,开启外层迭代$ {\mathcal{L}}_{1} $。
     2:repeat固定$ \boldsymbol{w}={\boldsymbol{w}}^{\left(k-1\right)} $,构造$ {\mathcal{P}}_{2} $。
     3: 令$ m=0 $,开启迭代循环$ {\mathcal{L}}_{2} $,$ {\lambda }^{(m)}={\lambda }^{(0)} $,
       $ {\boldsymbol{x}}_{(m)}={\boldsymbol{x}}^{(k-1)} $,$ {\tau }_{(m)}={\tau }_{0} $。
     4: repeat引入松弛变量$ \boldsymbol{u} $,构造$ {\mathcal{P}}_{4} $,求解得到$ {\boldsymbol{x}}^{*} $。
     5:  更新$ {\lambda }^{(m)} $,$ {\boldsymbol{x}}_{(m)} $,$ {\tau }_{(m)} $,$ m=m+1 $。
     6: until$ ||\boldsymbol{u}|{|}_{1}\leq e $触发停止条件。
     7: 更新波形$ {\boldsymbol{x}}^{\left(k\right)}={\boldsymbol{x}}^{\ast } $。
     8: 固定$ \boldsymbol{x}={\boldsymbol{x}}^{\left(k\right)} $,构造$ {\mathcal{P}}_{5} $。
     9: 令$ n=0 $,开启迭代$ {\mathcal{L}}_{3} $,$ {\boldsymbol{w}}_{(n)}={\boldsymbol{w}}^{(k-1)} $,
        $ {\tau }_{(n)}={\tau }_{(m)} $。
     10: repeat构造$ {\mathcal{P}}_{6} $,求解得到$ {\boldsymbol{w}}^{\ast } $。
     11:  更新$ {\boldsymbol{w}}_{(n)} $,$ {\tau }_{(n)} $,$ n=n+1 $。
     12: until$ {\tau }_{(n)}-{\tau }_{(n-1)}\leq {e}^{\prime} $触发停止条件。
     13: 更新滤波器$ {\boldsymbol{w}}^{\left(k\right)}={\boldsymbol{w}}^{\ast } $,$ {\tau }_{0}={\tau }_{(n)} $。
     14:until $ f({\boldsymbol{x}}^{(k)},{\boldsymbol{w}}^{(k)})-f({\boldsymbol{x}}^{(k-1)},{\boldsymbol{w}}^{(k-1)})\leq \varepsilon $触发$ {\mathcal{L}}_{1} $的停
     止条件。
     15:输出优化波形与滤波器解对$ ({\boldsymbol{x}}^{\left(k\right)},{\boldsymbol{w}}^{\left(k\right)}) $
    下载: 导出CSV

    表  1  SAR系统参数

    Table  1.   List of SAR parameters

    参 数 取 值
    平台高度 H0 6 km
    天线长度 D 2 m
    有效雷达速率 v 150 m/s
    视角 $ \theta $ 30°
    斜视角 $ \phi $
    中心频率 $ {f}_{0} $ 5.3 GHz
    脉冲持续时间 T 1 μs
    距离带宽 $ {B}_{\text{r}} $ 100 MHz
    距离采样率 $ {F}_{\text{r}} $ 120 MHz
    方位采样率 $ {F}_{\text{a}} $ 180 Hz
    距离线数量 $ {N}_{\mathrm{a}} $ 256
    每个距离线的采样点数 $ {N}_{\text{r}} $ 256
    下载: 导出CSV

    表  2  外场试验参数

    Table  2.   List of field experiment parameters

    参数 数值
    平台高度 1.5 m
    场景中心距 20 m
    载波频率 5.5 G
    信号带宽 100 MHz
    脉冲时宽 2 us
    采样率 122882080 Hz
    方位向步长 0.05 m
    合成孔径长度 11 m
    天线物理口径 0.15 m
    下载: 导出CSV
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  • 收稿日期:  2026-06-26

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