1 |
FARINA A. Electronic counter-countermeasures[M]. 3rd ed. SKOLNIK M, ed. New York: McGraw-Hill, 2008.
|
2 |
YANG Z P , YANG S N , ZHOU Q S , et al. A joint optimization algorithm for focused energy delivery in precision electronic warfare[J]. Defence Technology, 2022, 18 (4): 709- 721.
doi: 10.1016/j.dt.2021.03.001
|
3 |
LI S X , LIU G Y , ZHANG K , et al. DRL-based joint path planning and jamming power allocation optimization for suppressing netted radar system[J]. IEEE Signal Processing Letters, 2023, 30 (4): 548- 552.
|
4 |
ZHAO Z , LI X L , ZHANG Z R , et al. Optimal placement method of netted MIMO radar nodes based on hybrid integration for surveillance applications[J]. IEEE Trans. on Aerospace and Electronic Systems, 2024, 60 (3): 3537- 3552.
doi: 10.1109/TAES.2024.3368378
|
5 |
YAN J K , ZHANG T , MA L , et al. Deployment optimization for integrated search and tracking tasks in netted radar system based on Pareto theory[J]. IEEE Trans. on Aerospace and Electronic Systems, 2024, 60 (3): 3664- 3672.
doi: 10.1109/TAES.2024.3367662
|
6 |
孙兵, 李龙骧, 罗景青. 协同侦察系统增加猝发探测功能的定位技术[J]. 航天电子对抗, 2016, 32 (3): 9- 12.
|
|
SUN B , LI L X , LUO J Q . Location technology of synergy reconnaissance system adding instantaneous detection function[J]. Aerospace Electronic Warfare, 2016, 32 (3): 9- 12.
|
7 |
高石印, 石玮, 王钦, 等. 地对空雷达干扰机布阵与开机时序控制研究[J]. 空军预警学院学报, 2020, 34 (5): 346-350, 355.
|
|
GAO S Y , SHI W , WANG Q , et al. Research on ground-to-air radar jammer embattling and jamming time sequence control[J]. Journal of Air Force Early Warning Academy, 2020, 34 (5): 346-350, 355.
|
8 |
陈兴凯, 韩壮志, 封吉平, 等. 基于跟踪精度的火控雷达网间歇开机控制策略[J]. 探测与控制学报, 2013, 35 (5): 74- 78.
|
|
CHEN X K , HAN Z Z , FENG J P , et al. Intermittent control strategy of fire-control radar network based on tracking accuracy[J]. Journal of Detection & Control, 2013, 35 (5): 74- 78.
|
9 |
SMITH G E , CAMMENGA Z , MITCHELL A , et al. Experiments with cognitive radar[J]. IEEE Aerospace and Electronic Systems Magazine, 2016, 31 (12): 34- 46.
doi: 10.1109/MAES.2016.150215
|
10 |
MORCERF L A, KONTSON K R, CLEMA J K. A concept for the application of artificial intelligence technology to battlefield spectrum management[C]//Proc. of the IEEE Military Communications Conference-Crisis Communications, 1987: 161-166.
|
11 |
MOUSAVI S S, SCHUKAT M, HOWLEY E. Deep reinforcement learning: an overview[C]//Proc. of the SAI Intelligent Systems Conference, 2016: 426-440.
|
12 |
SUTTON R S , BARTO A G . Reinforcement learning: an introduction[J]. Robotica, 1999, 17 (2): 229- 235.
|
13 |
GAO Y , CHEN S F , LU X . Research on reinforcement learning technology: a review[J]. Acta Automatica Sinica, 2004, 30 (1): 86- 100.
|
14 |
WANG Y H, ZHANG T X, XU L X, et al. Model-free reinforcement learning based multi-stage smart noise jamming[C]//Proc. of the IEEE Radar Conference, 2019.
|
15 |
SIDDESHA K , JAYARAMAIAH G V , SINGH C . A novel deep reinforcement learning scheme for task scheduling in cloud computing[J]. Cluster Computing, 2022, 25 (6): 4171- 4188.
doi: 10.1007/s10586-022-03630-2
|
16 |
YOU C , LU J , FILEV D , et al. Advanced planning for auto-nomous vehicles using reinforcement learning and deep inverse reinforcement learning[J]. Robotics and Autonomous Systems, 2019, 114, 1- 18.
doi: 10.1016/j.robot.2019.01.003
|
17 |
LI Y J , ZHU Y P , GAO M G . Design of cognitive radar jamming based on Q-learning algorithm[J]. Transactions of Beijing Institute of Technology, 2015, 35 (11): 1194- 1199.
|
18 |
TAYLOR G, WAGNER K, RADEMACHER P. Deep Q-network for radar task-scheduling problem[C]//Proc. of the IEEE Radar Conference, 2022.
|
19 |
ZHANG W X , ZHAO T , ZHAO Z K , et al. An intelligent strategy decision method for collaborative jamming based on hierarchical multi-agent reinforcement learning[J]. IEEE Trans. on Cognitive Communications and Networking, 2024, 10 (4): 1467- 1480.
doi: 10.1109/TCCN.2024.3373640
|
20 |
ZHANG H W , XIE J W , ZHANG Z J , et al. Online task interleaving scheduling for the digital array radar[J]. AEU-International Journal of Electronics and Communications, 2017, 79, 250- 256.
|
21 |
YAN J K , PU W Q , DAI J H , et al. Resource allocation for search and track application in phased array radar based on Pareto bi-objective optimization[J]. IEEE Trans. on Vehicular Technology, 2019, 68 (4): 3487- 3499.
doi: 10.1109/TVT.2019.2894960
|
22 |
邢怀玺, 邢清华. 雷达闪烁探测优化调度模型[J]. 北京航空航天大学学报, 2024, 50 (12): 3884- 3893.
|
|
XING H X , XING Q H . An optimal scheduling model for scintillation detection of netted radars[J]. Journal of Beijing University of Aeronautics and Astronautics, 2024, 50 (12): 3884- 3893.
|
23 |
FENG J F , ZHANG Q , HU J H , et al. Dynamic assessment method of air target threat based on improved GIFSS[J]. Journal of Systems Engineering and Electronics, 2019, 30 (3): 525- 534.
doi: 10.21629/JSEE.2019.03.10
|
24 |
苏冠霞, 马华强, 李祥, 等. 基于层次分析法的陆基预警雷达固有威胁评估[J]. 电子信息对抗技术, 2021, 36 (4): 87- 91.
|
|
SU G X , MA H Q , LI X , et al. Inherent threat assessment of land-based early warning radar based on analytic hierarchy process[J]. Electronic Information Countermeasure Technology, 2021, 36 (4): 87- 91.
|
25 |
CHEN Y F , WU Y , CHEN N , et al. New approximate distributions for the generalized likelihood ratio test detection in passive radar[J]. IEEE Signal Processing Letters, 2019, 26 (5): 685- 689.
doi: 10.1109/LSP.2019.2903632
|
26 |
RICHTER R, GOMES N A S. A-4 Skyhawk aircraft stealth capa-city against L-band radar based on dynamic target detection[C]// Proc. of the IEEE Radar Conference, 2020.
|
27 |
尹康银, 姜志敏, 冯亚军. 预警雷达工作模式分配两阶段优化策略[J]. 兵工学报, 2022, 43 (2): 328- 336.
|
|
YIN K Y , JIANG Z M , FENG Y J . Two-stage optimization strategy of assignment for operating modes of early warning radar[J]. Acta Armamentarii, 2022, 43 (2): 328- 336.
|
28 |
JANG B , KIM M , HARERIMANA G , et al. Q-learning algorithms: a comprehensive classification and applications[J]. IEEE Access, 2019, 7, 133653- 133667.
doi: 10.1109/ACCESS.2019.2941229
|