
Journal of Systems Engineering and Electronics ›› 2026, Vol. 37 ›› Issue (4): 1364-1373.doi: 10.23919/JSEE.2025.000071
• CONTROL THEORY AND APPLICATION • Previous Articles
Haikuo Liu1(
), Yufei Xu2(
), Hengzai Hu1,*(
), Jinhua Yu1(
)
Received:2024-12-13
Online:2026-08-18
Published:2026-09-03
Contact:
Hengzai Hu
E-mail:foreverlhk@bit.edu.cn;xuyf0130@163.com;hengzai.hu@bit.edu.cn;easyhoon11@163.com
Supported by:Haikuo Liu, Yufei Xu, Hengzai Hu, Jinhua Yu. Three-dimensional cooperative guidance for multiple missiles: finite-time strategy with fully intermittent communication[J]. Journal of Systems Engineering and Electronics, 2026, 37(4): 1364-1373.
Table 1
Missile parameters"
| Missle | Position/km | V/(m/s) | ||||
| M1 | (10.89,9.19,8.00) | 330 | −30 | 40 | −15 | −20 |
| M2 | (10.77,9.20,7.90) | 325 | −30 | 40 | −25 | −20 |
| M3 | (10.61,8.91,7.80) | 320 | −30 | 40 | −20 | −20 |
| M4 | (10.45,8.78,7.70) | 315 | −30 | 40 | −25 | −15 |
| M5 | (10.22,8.63,7.60) | 315 | −30 | 40 | −30 | −20 |
| 1 |
Tan M H, Shen H Three-dimensional cooperative game guidance law for a leader-follower system with impact angles constraint. IEEE Trans. on Aerospace and Electronic Systems, 2024, 60 (1): 405.
doi: 10.1109/TAES.2023.3325795 |
| 2 |
Jeon I S, Lee J I, Tahk M J Impact-time-control guidance with generalized proportional navigation based on non-linear formulation. Journal of Guidance Control and Dynamics, 2016, 39 (8): 1885.
doi: 10.2514/1.G001681 |
| 3 |
Huang J, Chang S, Chen S A hybrid proportional navigation based two-stage impact time control guidance law. Journal of Systems Engineering and Electronics, 2022, 33 (2): 461.
doi: 10.23919/JSEE.2022.000046 |
| 4 |
He S M, Lin D F Three-dimensional optimal impact time guidance for antiship missiles. Journal of Guidance Control and Dynamics, 2019, 42 (4): 941.
doi: 10.2514/1.G003971 |
| 5 |
Lee S, Cho N, Kim Y Impact-time-control guidance strategy with a composite structure considering the Seeker’s field- of-view constraint. Journal of Guidance Control and Dynamics, 2020, 43 (8): 1566.
doi: 10.2514/1.G005063 |
| 6 | Chi H H, Ding X H, Zhang G L Three-dimensional cooperative guidance law for multiple missiles with predefined-time convergence. Aerospace Science and Technology, 2023, 44 (8): 1238. |
| 7 |
Dong F, Zhang X Y, Tan P L Non-singular terminal sliding mode cooperative guidance law under impact angle constraint. Journal of the Franklin Institute, 2024, 361 (14): 107090.
doi: 10.1016/j.jfranklin.2024.107090 |
| 8 |
Zhang Y, Tang S J, Guo J Two-stage cooperative guidance strategy using a prescribed-time optimal consensus method. Aerospace Science and technology, 2020, 100, 105641.
doi: 10.1016/j.ast.2019.105641 |
| 9 |
Zhao E J, Ding X, Zhang K, et al Fixed-time cooperative interception guidance law with angle constraints for multiple flight vehicles. Journal of Systems Engineering and Electronics, 2025, 36 (2): 569.
doi: 10.23919/JSEE.2025.000036 |
| 10 |
Erer K S, Tekin R Impact time and angle control based on constrained optimal solutions. Journal of Guidance, Control, and Dynamics, 2016, 39 (10): 2448.
doi: 10.2514/1.G000414 |
| 11 |
Shi H R, Lu F X, Wu L Cooperative trajectory optimization of UAVs in approaching stage using feedback guidance methods. Defence Technology, 2023, 24, 361- 381.
doi: 10.1016/j.dt.2022.03.013 |
| 12 |
Sinha A, Kumar S R, Mukherjee D Cooperative integrated guidance and control design for simultaneous interception. Aerospace Science and Technology, 2022, 120, 107262.
doi: 10.1016/j.ast.2021.107262 |
| 13 |
Sinha A, Kumar S R, Mukherjee D Three-dimensional nonlinear cooperative salvo using event-triggered strategy. Journal of Guidance, Control, and Dynamics, 2021, 44 (2): 328.
doi: 10.2514/1.G005367 |
| 14 |
Dong W, Deng F, Wang C Y, et al Three-dimensional spatial-temporal cooperative guidance without active speed control. Journal of Guidance, Control, and Dynamics, 2023, 46 (10): 1981.
doi: 10.2514/1.G007641 |
| 15 | Gao M J, Yan T, Han B J, et al Cooperative guidance law based on super-twisting observer for target maneuvering. Journal of Systems Engineering and Electronics, 2024, 35 (5): 1304. |
| 16 |
Li Y J, Zhu M J, An B H, et al Three-dimensional coopera- tive guidance laws with impact velocity and impact angles constraints. Aerospace Science and Technology, 2025, 159, 109997.
doi: 10.1016/j.ast.2025.109997 |
| 17 |
Yang B, Jing W X, Gao C S Three-dimensional cooperative guidance law for multiple missiles with impact angle constraint. Journal of Systems Engineering and Electronics, 2020, 31 (6): 1286.
doi: 10.23919/jsee.2020.000099 |
| 18 | He S, Wang W, Lin D, et al Consensus-based two-stage salvo attack guidance. IEEE Trans. on Aerospace and Electronic Systems, 2017, 54 (3): 1555. |
| 19 |
Chen S W, Wang W, Fan J F Three-dimensional piece- wise cooperative guidance with smooth switching topology. Aerospace Science and Technology, 2024, 150, 109181.
doi: 10.1016/j.ast.2024.109181 |
| 20 |
Lv J X, Wang C H, Liu B Fully distributed prescribed- time consensus control of multiagent systems under fixed and switching topologies. Information Sciences, 2023, 648, 119538.
doi: 10.1016/j.ins.2023.119538 |
| 21 |
Xiong Y C, Li J F, Hu C Q, et al Three-dimensional cooperative guidance strategy for heterogeneous vehicles without prior communication topology establishment. Aerospace Science and Technology, 2025, 161, 110095.
doi: 10.1016/j.ast.2025.110095 |
| 22 |
Kumar S R, Mukherjee D Cooperative salvo guidance using finite-time consensus over directed cycles. IEEE Trans. on Aerospace and Electronic Systems, 2020, 56 (2): 1504.
doi: 10.1109/TAES.2019.2934675 |
| 23 |
Chen Z Y, Chen W C, Liu X M, et al Three-dimensional fixed-time robust cooperative guidance law for simultaneous attack with impact angle constraint. Aerospace Science and Technology, 2021, 110, 106523.
doi: 10.1016/j.ast.2021.106523 |
| 24 |
Yang X Y, Zhang Y C, Song S M Two-stage cooperative guidance strategy with impact-angle and field-of-view constraints. Journal of Guidance, Control, and Dynamics, 2023, 46 (3): 590.
doi: 10.2514/1.G007040 |
| 25 |
Li W, Wen Q Q, He L, et al Three-dimensional impact angle constrained distributed cooperative guidance law for anti-ship missiles. Journal of Systems Engineering and Electronics, 2021, 32 (2): 447.
doi: 10.23919/jsee.2021.000038 |
| 26 |
Guan Z H, Liu Z W, Feng G Impulsive consensus algorithms for second-order multi-agent networks with sampled information. Automatica, 2012, 48 (7): 1397.
doi: 10.1016/j.automatica.2012.05.005 |
| 27 | Heemels W P, Johansson K H, Tabuada P. An introduction to event-triggered and self-triggered control [C]//IEEE 51st Conference on Decision and Control, 2012: 3270. |
| 28 |
Wang X Y, Sun S J, Xiao F, et al Dynamic event-triggered formation control of second-order nonholonomic systems. Journal of Systems Engineering and Electronics, 2023, 34 (2): 501.
doi: 10.23919/JSEE.2023.000049 |
| 29 | He Z, Wang J, Fan S Three dimensional cooperative guidance with field-of-view constraints based on event-triggered mechanism. Acta Aeronautica et Astronautica Sinica, 2024, 45 (2): 228. |
| 30 |
Song S H, Ha I J A Lyapunov-like approach to performance analysis of 3dimensional pure PNG laws. IEEE Trans. on Aerospace and Electronic Systems, 1994, 30, 238.
doi: 10.1109/7.250424 |
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| [2] | Li Yuan, Guangfu Ma, Chuanjiang Li, and Boyan Jiang. Finite-time attitude tracking control for spacecraft without angular velocity measurements#br# [J]. Journal of Systems Engineering and Electronics, 2017, 28(6): 1174-1185. |
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