吉林大学学报(工学版) ›› 2025, Vol. 55 ›› Issue (7): 2434-2443.doi: 10.13229/j.cnki.jdxbgxb.20231089

• 通信与控制工程 • 上一篇    

基于互补相位与离散混沌频率联合编码的低截获概率雷达波形设计

张顺生1(),杜龙1,王文钦2   

  1. 1.电子科技大学 电子科学技术研究院,成都 611731
    2.电子科技大学 信息与通信工程学院,成都 611731
  • 收稿日期:2023-10-11 出版日期:2025-07-01 发布日期:2025-09-12
  • 作者简介:张顺生(1980-),男,研究员,博士. 研究方向:雷达信号处理.E-mail: zhangss@uestc.edu.cn
  • 基金资助:
    国家部委基金项目

Low probability of interception radar waveform design based on joint coding of complementary phase and discrete chaotic frequency

Shun-sheng ZHANG1(),Long DU1,Wen-qin WANG2   

  1. 1.Research Institute of Electronic Science and Technology,University of Electronic Science and Technology of China,Chengdu 611731,China
    2.School of Information and Communication Engineering,University of Electronic Science and Technology of China,Chengdu 611731,China
  • Received:2023-10-11 Online:2025-07-01 Published:2025-09-12

摘要:

为了降低雷达辐射的信号被敌方无源探测系统侦测的概率,本文提出了一种相位与频率联合编码的低截获雷达波形设计方法。该方法在线性调频信号的基础上,利用互补二相码以及混沌序列分别对脉内调制进行相位编码和频率编码。数值仿真实验结果表明:本文所设计波形在时频域上呈现出伪随机性的特点,低识别性能得到提高;该信号在匹配滤波后具有极低的峰值旁瓣电平,表现出优良的低截获性能;其三维模糊函数图呈现出理想的“图钉型”,具有良好的距离、速度分辨力及抗干扰特性。

关键词: 信号与信息处理, 低截获雷达, 射频隐身, 互补码, 混沌序列, 联合编码

Abstract:

To reduce the probability of radar radiation signals being detected by enemy passive detection systems, this paper proposes a low-intercept radar waveform design method that employs phase and frequency joint coding. The method utilizes complementary two-phase codes and chaotic sequences to encode the phase and frequency within the pulse based on linear frequency modulation signals. Numerical simulation results show that the designed waveform exhibits pseudo-randomness in the time-frequency domain and improves the low-identification performance. The signal has a very low peak side lobe level after pulse compression, which demonstrates excellent low intercept performance. Its three-dimensional ambiguity function graph shows an ideal "peg shape" with good distance and speed resolution and anti-interference characteristics.

Key words: signal and information processing, low-intercept radar, radio-frequency stealth, complementary codes, chaotic sequence, joint coding

中图分类号: 

  • TN974

图1

互补码的自相关函数"

图2

脉冲交替发射模式"

图3

Bernoulli映射"

图4

LFM-CPC-DCFC信号生成流程图"

表1

信号仿真参数"

参数参数值
脉冲重复频率/Hz2 500
子脉冲宽度/μs10
带宽/MHz10
频率间隔/MHz1
脉冲个数/个32
子脉冲个数/个32
采样率/MHz84
混沌映射类型Bernoulli映射
混沌映射初值-0.096
混沌映射参数2
混沌序列长度1 024

图5

不同信号的频谱特性"

图6

LFM-CPC-DCFC信号三维时频域分布图"

图7

LFM-CPC-DCFC信号单个脉冲中的时频域分布图"

图8

LFM-CPC-DCFC信号的匹配滤波结果"

图9

LFM-CPC-DCFC信号的模糊函数分析"

表2

截获因子比较"

LPI信号时宽带宽积/(s·Hz)截获因子
LFM-CPC-DCFC8 3300.82
LFM2 9481.06
NLFM1 7661.21
LFM-CPC2 9571.06
LFM-DCFC7 8600.83
文献[1]所设计波形2 9441.06
文献[3]所设计波形4 6180.95

表3

匹配滤波结果比较"

LPI信号PSLL/dB积分旁瓣电平/dB
LFM-CPC-DCFC-40.75-49.85
LFM-13.29-33.28
NLFM-26.90-43.22
LFM-CPC-13.41-41.40
LFM-DCFC-26.40-34.43
文献[1]所设计波形-23.06-35.18
文献[3]所设计波形-28.32-38.96

图10

截获概率随发射功率的变化"

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