| 1 |
ŞENGÜL H, GÜREL A E, ORDUYILMAZ A. Passive direction finding using correlative interferometer[C]// Proc. of the 29th Signal Processing and Communications Applications Conference, 2021.
|
| 2 |
ZHANG J B, FENG W Q, XU Y. Interferometer direction-finding system with time-division multiplexing of spread spectrum signals[J]. Microwave & Optical Technology Letters, 2022, 64 (6): 983- 991.
|
| 3 |
石荣. 干涉仪测向原理、方法与应用[M]. 北京: 电子工业出版社, 2022.
|
|
SHI R. Principle method and application for direction finding by interferometer[M]. Beijing: Publishing House of Electronics Industry, 2022.
|
| 4 |
赵雅琴, 王宝莹, 吴龙文, 等. 基于联合双机MUSIC的多目标无源定位算法[J]. 信号处理, 2020, 36 (3): 415- 425.
doi: 10.16798/j.issn.1003-0530.2020.03.012
|
|
ZHAO Y Q, WANG B Y, WU L W, et al. Multi-target passive localization based on dual aircraft joint MUSIC algorithm[J]. Journal of Signal Processing, 2020, 36 (3): 415- 425.
doi: 10.16798/j.issn.1003-0530.2020.03.012
|
| 5 |
赵小华, 梁广真. 干涉仪测向技术研究[J]. 舰船电子对抗, 2016, 39 (3): 7- 10.
doi: 10.16426/j.cnki.jcdzdk.2023.03.018
|
|
ZHAO X H, LIANG G Z. Research into interferometer direction-finding technology[J]. Shipboard Electronic Countermeasure, 2016, 39 (3): 7- 10.
doi: 10.16426/j.cnki.jcdzdk.2023.03.018
|
| 6 |
王英甫, 殷加鹏, 卢中昊, 等. 分布式间歇采样转发信号对机载干涉仪参数测量影响分析[J]. 雷达学报, 2024, 13 (5): 1037- 1048.
doi: 10.12000/JR24090
|
|
WANG Y F, YIN J P, LU Z H, et al. Analysis of the influence of distributed interrupted sampling repeating signals on airborne interferometer parameter measurements[J]. Journal of Radars, 2024, 13 (5): 1037- 1048.
doi: 10.12000/JR24090
|
| 7 |
周伟江, 秦大国, 王雄. 交叉眼干扰技术及干扰效果仿真分析[J]. 火力与指挥控制, 2022, 47 (1): 115- 120.
|
|
ZHOU W J, QIN D G, WANG X. Research and effect simulation analysis on cross-eye jamming technology[J]. Fire Control & Command Control, 2022, 47 (1): 115- 120.
|
| 8 |
刘佳伟, 达通航, 房晓明, 等. 对导弹单脉冲跟踪雷达的交叉眼干扰方法研究[J]. 舰船电子对抗, 2023, 46 (2): 5- 12.
doi: 10.16426/j.cnki.jcdzdk.2023.02.002
|
|
LIU J W, DA T H, FANG X M, et al. Research into cross-eye jamming method to missile monopulse tracking radar[J]. Shipboard Electronic Countermeasure, 2023, 46 (2): 5- 12.
doi: 10.16426/j.cnki.jcdzdk.2023.02.002
|
| 9 |
PLESSIS W P D. Path-length compensation in multiloop retrodirective cross-eye jamming[J]. IEEE Trans. on Aerospace and Electronic Systems, 2019, 55 (1): 397- 406.
doi: 10.1109/TAES.2018.2852378
|
| 10 |
NING Y H, YU M X. Performance analysis of multiple antennas synthetic false target jamming[J]. IEEE Access, 2022, 10, 16178- 16187.
doi: 10.1109/ACCESS.2022.3144979
|
| 11 |
LIU T P, LIAO D P, WEI X Z, et al. Performance analysis of multiple-element retrodirec-tive cross-eye jamming based on linear array[J]. IEEE Trans. on Aerospace and Electronic Systems, 2015, 51 (3): 1867- 1876.
doi: 10.1109/TAES.2015.140035
|
| 12 |
LIU T P, LIU Z, LIAO D P, et al. Platform skin return and multiple-element linear retrodirective cross-eye jamming[J]. IEEE Trans. on Aerospace and Electronic Systems, 2016, 52 (2): 821- 835.
doi: 10.1109/TAES.2016.140949
|
| 13 |
HOU Y D, WANG W Q. Active frequency diverse array counteracting interferometry-based DOA reconnaissance[J]. IEEE Antennas and Wireless Propagation Letters, 2019, 18 (9): 1922- 1925.
doi: 10.1109/LAWP.2019.2933547
|
| 14 |
GE J A, XIE J W, CHEN C S, et al. The direction of arrival location deception model counter duel baseline phase interferometer based on frequency diverse array[J]. Frontiers in Physics, 2021, 9, 1- 10.
|
| 15 |
关浩亮. 基于频控阵的无源定位欺骗技术[D]. 成都: 电子科技大学, 2019.
|
|
GUAN H L. Passive localization deception approach using frequency diverse array[D]. Chengdu: University of Electronic Science and Technology of China, 2019.
|
| 16 |
关浩亮, 张顺生, 王文钦. 基于频控阵的无源定位对抗技术[J]. 雷达学报, 2021, 10 (6): 833- 841.
|
|
GUAN H L, ZHANG S S, WANG W Q. Passive localization countermeasure based on frequency diverse array[J]. Journal of Radars, 2021, 10 (6): 833- 841.
|
| 17 |
王博, 谢军伟, 葛佳昂, 等. FDA发射干扰机对无源雷达干涉仪测向系统的欺骗机理[J]. 华南理工大学学报(自然科学版), 2020, 48 (1): 93- 103.
doi: 10.12141/j.issn.1000-565X.190264
|
|
WANG B, XIA J W, GE J A, et al. Deception mechanism of FDA jammer to passive radar interferometer direction finding system[J]. Journal of South China University of Technology (National Science Edition), 2020, 48 (1): 93- 103.
doi: 10.12141/j.issn.1000-565X.190264
|
| 18 |
刘天鹏. 多源反向交叉眼干扰技术研究[D]. 长沙: 国防科技大学, 2016.
|
|
LIU T P. Research on multiple-element retrodirective cross-eye jamming[D]. Changsha: National University of Defense Technology, 2016.
|
| 19 |
吕元杰, 白渭雄, 付孝龙, 等. 基于转发路径优化的交叉眼干扰结构[J]. 空军工程大学学报(自然科学版), 2019, 20 (2): 42- 46.
doi: 10.3969/j.issn.1009-3516.2019.02.007
|
|
LV Y J, BAI W X, FU X L, et al. Cross-eye jamming structure based on forwarding path optimization[J]. Journal of Air Force Engineering University (National Science Edition), 2019, 20 (2): 42- 46.
doi: 10.3969/j.issn.1009-3516.2019.02.007
|
| 20 |
李栋, 孟进, 刘永才, 等. 交叉眼技术对主被动复合单脉冲雷达测角的干扰效果分析[J]. 雷达学报, 2022, 11 (4): 705- 712.
doi: 10.12000/JR22048
|
|
LI D, MENG J, LIU Y C, et al. Effect of cross-eye jamming on the active-passive composite monopulse radar[J]. Journal of Radars, 2022, 11 (4): 705- 712.
doi: 10.12000/JR22048
|
| 21 |
王文钦, 张顺生. 频控阵雷达技术研究进展综述[J]. 雷达学报, 2022, 11 (5): 830- 849.
doi: 10.12000/JR22141
|
|
WANG W Q, ZHANG S S. Recent advances in frequency diverse array radar techniques[J]. Journal of Radars, 2022, 11 (5): 830- 849.
doi: 10.12000/JR22141
|
| 22 |
郭福成, 李金洲, 张敏. 无源定位原理与方法[M]. 北京: 国防工业出版社, 2021.
|
|
GUO F C, LI J Z, ZHANG M. Passive location theories and methods[M]. Beijing: National Defense Industry Press, 2021.
|
| 23 |
RICHARD A P. Electronic warfare target location methods[M]. 2nd ed. Boston: Artech House, 2012.
|
| 24 |
VINCENT J A, SHERRY E H. Utilization of modified polar coordinates for bearings only tracking[J]. IEEE Trans. on Automatic Control, 1983, 28 (3): 283- 294.
doi: 10.1109/TAC.1983.1103230
|
| 25 |
石荣, 阎剑, 张聪. 运动单站定位与多站测向定位的统一理论模型[J]. 舰船电子对抗, 2013, 36 (3): 1- 6.
doi: 10.3969/j.issn.1673-9167.2013.03.001
|
|
SHI R, YAN J, ZHANG C. United theory model of mobile single station location and multi-station DF location[J]. Shipboard Electronic Countermeasure, 2013, 36 (3): 1- 6.
doi: 10.3969/j.issn.1673-9167.2013.03.001
|