

系统工程与电子技术 ›› 2026, Vol. 48 ›› Issue (2): 503-514.doi: 10.12305/j.issn.1001-506X.2026.02.12
• 传感器与信号处理 • 上一篇
收稿日期:2024-09-30
修回日期:2024-11-11
出版日期:2025-02-27
发布日期:2025-02-27
通讯作者:
韩伟
E-mail:hanwei11111@126.com
作者简介:胡继军(1981—),男,研究员,博士研究生,主要研究方向为信息对抗、电子侦察和通信侦察
Jijun HU, Wei HAN(
), Long JIN, Xiwa ZHOU, Guoyu ZHANG, Qinyue ZHOU
Received:2024-09-30
Revised:2024-11-11
Online:2025-02-27
Published:2025-02-27
Contact:
Wei HAN
E-mail:hanwei11111@126.com
摘要:
针对干扰主动雷达导引头时传统手段存在的功率需求高、欺骗逼真度低、干扰样式单一及实时性不足等问题,提出一种基于多站组网架构的单比特多模态干扰对抗方法。首先通过主从站协同数据融合,实现非合作雷达信号的高精度参数估计。其次基于单频时变阈值量化技术,动态调节量化指标的幅度、频率、相位及信号阈值比等多维度参数,灵活生成单目标欺骗、多目标欺骗、射频压制、噪声压制及多种协同干扰样式。最后结合目标空间协同与精确时延控制,实现干扰信号与真实回波的同步匹配。仿真实验表明,四站组网配置下,在成像功能对抗中真实目标被假目标混淆或淹没,图像清晰度显著下降;在单脉冲跟踪阶段可有效压制真实目标能量,导致恒虚警检测丢失真实目标后锁定虚假航迹。所提方法通过多模态干扰样式与多站协同架构的结合,既能降低传统干扰的功率需求与硬件复杂度,又能提升欺骗逼真度与实时响应能力,充分验证了单比特干扰技术拓展至雷达导引头对抗领域的可行性与有效性,为低复杂度、分布式干扰系统设计提供技术路径。
中图分类号:
胡继军, 韩伟, 金龙, 周希娃, 张国玉, 周钦月. 雷达导引头的多站组网单比特干扰对抗方法[J]. 系统工程与电子技术, 2026, 48(2): 503-514.
Jijun HU, Wei HAN, Long JIN, Xiwa ZHOU, Guoyu ZHANG, Qinyue ZHOU. Multi-station network one-bit jamming methods against radar seeker[J]. Systems Engineering and Electronics, 2026, 48(2): 503-514.
| 1 | HAN H, LIU F L, WANG Z H, et al. Adaptive one-bit quantization for SAR imaing [C]// Proc. of the International Conference on Microwave and Millimeter Wave Technology, 2019. |
| 2 | ZHAO B, HUANG L, LI J, et al. 1-bit SAR imaging assisted with single-frequency threshold[C]//Proc. of the IEEE International Geoscience and Remote Sensing Symposium, 2019: 815−818. |
| 3 | NITIN J M, KAYLA N, ROBERT W H. Low-rank mmwave MIMO channel estimation in one-bit receivers[C]//Proc. of the IEEE International Conference on Acoustics, Speech, and Signal Processing, 2020: 5005−5009. |
| 4 | WANG F Y, FANG J, LI H B, et al. One-bit quantization design and channel estimation for massive MIMO systems[J]. Information Theory, 2018, 67, 10921- 10934. |
| 5 | ARIAN E, FARHANG Y, MOJTABA S. HDR imaging with one-bit quantization [C]//Proc. of the IEEE Sensor Array and Multichannel Signal Processing Workshop, 2024. |
| 6 |
GUO N, ZHENG Z H, WANG W Q. Robust DOA estimator against mutual coupling using one-bit sampling[J]. Circuits, Systems, and Signal Processing, 2024, 43 (4): 2626- 2638.
doi: 10.1007/s00034-023-02583-0 |
| 7 | SHAHIN K, NAVEED N, MOJTABA S, et al. Deep signal recovery with one-bit quantization[C]//Proc. of the IEEE International Conference on Acoustics, Speech, and Signal Processing, 2018. |
| 8 |
ZOU C, YANG F, SONG J, et al. Underwater wireless optical communication with one-bit quantization: a hybrid autoencoder and generative adversarial network approach[J]. IEEE Trans. on Wireles Communications, 2023, 22 (10): 6432- 6444.
doi: 10.1109/TWC.2023.3243212 |
| 9 |
CHEN X Z, LEI H, ZHOU H F, et al. One-bit digital beamforming[J]. IEEE Trans. on Aerospace and Electronic Systems, 2023, 59 (1): 555- 567.
doi: 10.1109/TAES.2022.3181257 |
| 10 | ZEITZ S, SEIFERT D, ROTH F, et al. On the timing synchronization for receivers with temporally oversampled 1-bit quantization[C]//Proc. of the 27th International Workshop on Smart Antennas, 2024. |
| 11 | LONG S X, LIN M T, QIN X L, et al. Simulation of 1-bit microwave photonic phase shifter and its application on radar jamming[C]// Proc. of the International Conference on Microwave and Millimeter Wave Technology, 2024. |
| 12 | YU H X, WANG J, DAI C H, et al. Research and optimization of frequency measurement algorithm based on mono-bit receiver[C]//Proc. of the International Coference on Communication, Image and Signal Processing, 2023: 492−497. |
| 13 |
WANG Y, WU L S, CHENG W, et al. A wideband mono-bit digital receiver circuit using InP/CMOS 3D heterogeneous integration[J]. Analog Integrated Circuits and Signal Processing, 2021, 107 (3): 695- 702.
doi: 10.1007/s10470-021-01815-0 |
| 14 |
赵博, 陈基, 黄磊. 单比特多模态SAR干扰方法研究[J]. 雷达学报, 2022, 11 (6): 1119- 1130.
doi: 10.12000/JR22176 |
|
ZHAO B, CHEN J, HUANG L. One-bit multi-modality jamming method against SAR[J]. Journal of Radars, 2022, 11 (6): 1119- 1130.
doi: 10.12000/JR22176 |
|
| 15 |
黄杰文, 祁海明, 李杨, 等. DBF-SAR系统1比特量化设计[J]. 宇航学报, 2011, 32 (11): 2387- 2394.
doi: 10.3873/j.issn.1000-1328.2011.11.013 |
|
HUANG J W, QI H M, LI Y, et al. One-bit quantization for DBF-SAR[J]. Journal of Astronautics, 2011, 32 (11): 2387- 2394.
doi: 10.3873/j.issn.1000-1328.2011.11.013 |
|
| 16 | FRANCESCHETTI G, PASCAZIO V, SCHIRINZI G. Processing of signum coded SAR signal: theory and experiments[J]. IEE Proceedings F-Radar and Signal processing, 1991, 138 (3): 192- 198. |
| 17 |
FANG J, SHEN Y N, YANG L X, et al. Adaptive one-bit quantization for compressed sensing[J]. Signal Processing, 2016, 125, 145- 155.
doi: 10.1016/j.sigpro.2016.01.020 |
| 18 | HAN H, LIU F L, WANG Z, et al. Adaptive one-bit quantization for SAR imaging[C]// Proc. of the International Conference on Microwave and Millimeter Wave Technology, 2019. |
| 19 |
赵博, 黄磊, 周汉飞, 等. 基于单频时变阈值的1-bit SAR成像方法研究[J]. 雷达学报, 2018, 7 (4): 446- 454.
doi: 10.12000/JR18036 |
|
ZHAO B, HUANG L, ZHOU H F, et al. 1-bit SAR imaging method based on single frequency time varying threshold[J]. Journal of Radars, 2018, 7 (4): 446- 454.
doi: 10.12000/JR18036 |
|
| 20 |
ZHAO B, HUANG L, BAO W M. One-bit SAR imaging based on single frequency thresholds[J]. IEEE Trans. on Geoscience and Remote Sensing, 2019, 57 (9): 7017- 7032.
doi: 10.1109/TGRS.2019.2910284 |
| 21 | FOMARO G, PASCAZIO V, SCHIRINZ G. Synthetic aperture radar interferometry using one bit coded raw and reference signals [J]. IEEE Trans. on Geoscience and Remote Sensing, 1997, 35: 1245−1253. |
| 22 | 周崇彬. 单比特合成孔雷达稀疏成像技术的研究[D]. 合肥: 中国科学技术大学, 2016. |
| ZHOU C B. Studies on 1-bit coded synthetic aperture radar sparse imaging[D]. Hefei: University of Science and Technology of China, 2016. | |
| 23 | JI P F, SHI Q Z, LV H, et al. A method of improving SFDRs of 1-bit signals for a mono-bit receiver[J]. Journal of Systems Engineering and Electronics, 2022, 33 (2): 330−339. |
| 24 | HU D X, LIU F L, WANG Z H, et al. One-bit SAR imaging based on perceptron learning algorithm with bootstrap method[C]// Proc. of the International Conference on Microwave and Millimeter Wave Technology, 2021. |
| 25 |
SI C Q, ZHAO B, HUANG L, et al. A convolutional de-quantization network for harmonics suppression in one-Bit SAR imaging[J]. IEEE Trans. on Geoscience and Remote Sensing, 2023, 61, 5221316.
doi: 10.1109/tgrs.2023.3330530 |
| 26 |
邓云凯, 禹卫东, 张衡, 等. 未来星载SAR技术发展趋势[J]. 雷达学报, 2020, 9 (1): 1- 33.
doi: 10.12000/JR20008 |
|
DENG Y K, YU W D, ZHANG H, et al. Forthcoming spaceborne SAR development[J]. Journal of Radars, 2020, 9 (1): 1- 33.
doi: 10.12000/JR20008 |
|
| 27 | DENG Y K, YU W D, ZHANG H, et al. Forthcoming spaceborne SAR development[J]. Journal of Radars, 2020, 9 (1): 1- 33. |
| 28 | JI P H, XING S Q, DAI D H, et al. A fast false large-scene images generation method against SAR based on two-dimension CZT and multi-transmitter cooperation[J]. IEEE Trans. on Aerospace and Electronic Systems, 2024, 60(5): 5685−5701. |
| 29 |
ZHAO B, HUANG L, LI B, et al. One-bit splitting deceptive jamming against SAR[J]. Defence Technology, 2022, 18 (10): 1760- 1777.
doi: 10.1016/j.dt.2021.09.018 |
| 30 |
ZHAO B, HUANG L, LI J, et al. Deceptive SAR jamming based on 1-bit sampling and time-varying thresholds[J]. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, 2018, 11 (3): 939- 950.
doi: 10.1109/JSTARS.2018.2793247 |
| 31 | QU H S, GONG M, FENG Y, et al. A health evaluation model for radar seeker based on data mining technology[C]// Proc. of the 2nd International Conference on Signal Processing and Intelligent Computing, 2024: 394−398. |
| 32 |
胡继军, 韩伟, 张国玉, 等. 基于多站数据融合的参数精估计方法[J]. 遥测遥控, 2024, 45 (2): 109- 123.
doi: 10.12347/j.ycyk.20230926001 |
|
HU J J, HAN W, ZHANG G Y, et al. Precise parameter estimation method based on multi-receivers data fusion[J]. Journal of Telemetry, Tracking and Command, 2024, 45 (2): 109- 123.
doi: 10.12347/j.ycyk.20230926001 |
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