

系统工程与电子技术 ›› 2026, Vol. 48 ›› Issue (10): 3552-3561.doi: 10.12305/j.issn.1001-506X.2026.10.25
• 系统工程 • 上一篇
路琪1,2, 肖兵3, 郭乐江4, 周玉萌2
收稿日期:2025-07-15
出版日期:2026-10-25
发布日期:2026-09-30
通讯作者:
郭乐江
作者简介:路 琪(1994—),男,博士研究生,主要研究方向为军事信息系统、电子对抗基金资助:Qi Lu1,2, Bing Xiao3, Lejiang Guo4, Yumeng Zhou2
Received:2025-07-15
Online:2026-10-25
Published:2026-09-30
Contact:
Lejiang Guo
摘要:
为全面评估无人集群的作战效能,采用观察-判断-决策-行动(observe-orient-decide-act,OODA)作战环理论建立评估模型。首先,根据OODA作战环分析作战活动,确定侦察预警、指挥控制等能力指标,采用网络层次分析法实现对无人集群作战效能的评估。以对空拦截任务为应用背景,基于能力指标体系建立判断矩阵并根据无权重超矩阵与加权超矩阵获取极限超矩阵下指标权重值。研究结果发现,目标识别概率、决策者知识水平和信息处置速率在效能评估中权重占比较大,分别为16.36%、15.08%和12.64%,提升无人集群作战效能要重点加强对此3个指标的建设力度。所提方法可有效解决装备间多层复杂关联的量化评估问题。
中图分类号:
路琪, 肖兵, 郭乐江, 周玉萌. 基于网络层次分析法的无人集群作战效能评估[J]. 系统工程与电子技术, 2026, 48(10): 3552-3561.
Qi Lu, Bing Xiao, Lejiang Guo, Yumeng Zhou. Combat effectiveness evaluation of unmanned swarms based on analytic network process[J]. Systems Engineering and Electronics, 2026, 48(10): 3552-3561.
表2
控制层准则下元素重要程度比较的判断矩阵$ {\boldsymbol{A}}_i^{(jl)} $"
| ··· | 归一化特征向量 | ||||
表3
控制层准则下元素集重要程度比较的判断矩阵 $ {{\boldsymbol{A}}^{(j)}} $"
| ··· | 归一化特征向量 | ||||
表7
控制层无人集群作战效能准则下元素间的无加权超矩阵$ {\boldsymbol{W}} $"
| 次准则 | ||||||||||||
表9
控制层无人集群作战效能准则下元素间的加权超矩阵$ \overline{{\boldsymbol{W}}} $"
| 次准则 | ||||||||||||
表10
控制层无人集群作战效能准则下元素间的极限超矩阵$ {\overline{{\boldsymbol{W}}}}^{\mathrm{\infty }} $"
| 次准则 | ||||||||||||
表11
控制层各元素相对于无人集群作战效能准则的相对权重"
| 权重 | 侦察预警能力 | 指挥控制能力 | 信息处理能力 | 火力打击能力 | |||||||||||
| 元素权重 | |||||||||||||||
| 集合权重 | |||||||||||||||
| 1 |
Mao W W, Pang T, Guo Z R, et al. Analysis of the research progress of electromagnetic railgun based on citespace[J]. IEEE Access, 2024, 12, 3499.
doi: 10.1109/ACCESS.2023.3349028 |
| 2 |
Wang F, Liu Y, Zhou Y D, et al. An unmanned tank combat game driven by FPSO-MADDPG algorithm[J]. The Journal of Supercomputing, 2024, 80 (15): 21615.
doi: 10.1007/s11227-024-06225-3 |
| 3 |
Han Q, Pang B, Li S, et al. Evaluation method and optimization strategies of resilience for air & space defense system of systems based on kill network theory and improved self-information quantity[J]. Defence Technology, 2023, 21, 219.
doi: 10.1016/j.dt.2023.01.005 |
| 4 | 明振军, 袁珂, 王国新, 等. 考虑动静态能力的作战体系综合效能评估方法[J]. 北京理工大学学报, 2025, 45(2): 144. |
| 5 |
赵贝贝, 王方博, 马红侠, 等. 基于系统动力学的无人机集群空战效能评估[J]. 吉林大学学报(信息科学版), 2025, 43 (2): 327.
doi: 10.3969/j.issn.1671-5896.2025.02.016 |
| 6 |
张子伟, 郭齐胜, 董志明, 等. 体系作战效能评估与优化方法综述[J]. 系统仿真学报, 2022, 34 (2): 303.
doi: 10.16182/j.issn1004731x.joss.21-0225 |
| 7 |
Yu H, Lian D J, Chen G D, et al. Efficiency evaluations of statistical decision probabilities with multiple alternative hypotheses for quality control[J]. GPS Solutions, 2022, 26 (2): 62.
doi: 10.1007/s10291-022-01245-z |
| 8 |
Liu C C, Yu C H, Chen K S. Using statistical test method to establish a decision model of performance evaluation matrix[J]. Applied Sciences, 2023, 13 (8): 5139.
doi: 10.3390/app13085139 |
| 9 |
Kuikka V. Probabilistic modelling of system capabilities in operations[J]. Systems, 2023, 11 (3): 115.
doi: 10.3390/systems11030115 |
| 10 |
Gui J, Alejano L R, YAO M, et al. GIS-based landslide susceptibility modeling: a comparison between best-first decision tree and its two ensembles (BagBFT and RFBFT)[J]. Remote Sensing, 2023, 15 (4): 1007.
doi: 10.3390/rs15041007 |
| 11 |
Tran H, Vu-van T, Bang T, et al. Data mining of formative and summative assessments for improving teaching materials towards adaptive learning: a case study of programming courses at the university level[J]. Electronics, 2023, 12 (14): 3135.
doi: 10.3390/electronics12143135 |
| 12 |
Sahlabadi M, Muniyandi R C, Shukur Z, et al. LPMSAEF: lightweight process mining-based software architecture evaluation framework for security and performance analysis[J]. Heliyon, 2024, 10 (5): e26969.
doi: 10.1016/j.heliyon.2024.e26969 |
| 13 |
Kenyeres E, Kummer A, Abonyi J. Machine learning classifier-based metrics can evaluate the efficiency of separation systems[J]. Entropy, 2024, 26 (7): 571.
doi: 10.3390/e26070571 |
| 14 | Focassio B M, . Freitas L P, Schleder G R. Performance assessment of universal machine learning interatomic potentials: challenges and directions for materials’ surfaces[J]. ACS Applied Materials & Interfaces, 2025, 17 (9): 13111. |
| 15 | Liu G W, Liu J, Wang N, et al. A machine learning-aided framework for hierarchical management of building structural safety[J]. Engineering, Construction and Architectural Management, 2025. DOI:10.1108/ECAM-10-2024-1344. |
| 16 | 王川川, 陆科宇, 王满喜, 等. 基于杀伤链和网络层次分析法的体系效能评估方法[J]. 舰船电子工程, 2025, 45(4): 146. |
| 17 | Wang Y Z, Fu X J, Dong J, et al. Radar intelligent game anti-jamming strategy optimisation based on jamming behaviour inference and active induction[J]. IET Radar, Sonar & Navigation, 2025, 19(1): e70021. |
| 18 |
张婷婷, 蓝羽石, 宋爱国. 无人集群系统自主协同技术综述[J]. 指挥与控制学报, 2021, 7 (2): 127.
doi: 10.12347/j.ycyk.20240314001 |
| 19 | 陈立栋, 王原, 邸建勋, 等. 无人集群协同控制策略及军事应用[J]. 指挥与控制学报, 2023, 9(4): 380. |
| 20 |
谭跃进, 张小可, 杨克巍. 武器装备体系网络化描述与建模方法[J]. 系统管理学报, 2012, 21 (6): 781.
doi: 10.3969/j.issn.1005-2542.2012.06.009 |
| 21 | 张宏, 吴瀚, 朱大鹏. 对作战能力评估标准的认识与思考[J]. 军事运筹与评估, 2024, 39(1): 24. |
| 22 | 李昌玺, 孙玉彪, 范泽昊, 等. 无人作战平台发展现状及趋势[J]. 中国电子科学研究院学报, 2023, 18 (3): 274. |
| 23 |
Doull K E, Chalmers C, Fergus P, et al. An evaluation of the factors affecting “Poacher” detection with drones and the efficacy of machine-learning for detection[J]. Sensors, 2021, 21 (12): 4074.
doi: 10.3390/s21124074 |
| 24 |
Patton C E, Wickens C D, Clegg B A, et al. How history trails and set size influence detection of hostile intentions[J]. Cognitive Research: Principles and Implications, 2022, 7 (1): 41.
doi: 10.1186/s41235-022-00395-5 |
| 25 |
Toroi G I. Rethinking military command and control systems[J]. Bulletin of “Carol I” National Defence University, 2025, 13 (4): 88.
doi: 10.53477/2284-9378-24-51 |
| 26 |
Mattingsdal J, Aandal J, Johnsen B H, et al. From peacetime to war: a path analysis of the factors that predict performance among police and military commanders in collaborative crisis response[J]. Frontiers in Psychology, 2023, 14, 1238760.
doi: 10.3389/fpsyg.2023.1238760 |
| 27 |
Zak Y, Parmet Y, Oron-gilad T. Facilitating the work of unmanned aerial vehicle operators using artificial intelligence: an intelligent filter for command-and-control maps to reduce cognitive workload[J]. Human Factors: the Journal of the Human Factors and Ergonomics Society, 2023, 65 (7): 1345.
doi: 10.1177/00187208221081968 |
| 28 |
Jia L Y, Cai C T, Wang X M, et al. Multi-intent autonomous decision-making for air combat with deep reinforcement learning[J]. Applied Intelligence, 2023, 53 (23): 29076.
doi: 10.1007/s10489-023-05058-6 |
| 29 | Mugnai M, Teppati L M, Satler M, et al. Towards autonomous firefighting UAVs: online planners for obstacle avoidance and payload delivery[J]. Journal of Intelligent & Robotic Systems, 2024, 110 (1): 10. |
| 30 |
Martino R, Ventre V. An analytic network process to support financial decision-making in the context of behavioral finance[J]. Mathematics, 2023, 11 (18): 3994.
doi: 10.3390/math11183994 |
| 31 |
Wolf D E, Louw L, Palm D. An analysis of blockchain versus relational databases for digitalizing information flows in global supply chains using the analytic network process[J]. International Journal of Production Research, 2024, 62 (14): 5016.
doi: 10.1080/00207543.2023.2282751 |
| 32 |
Kim Y J, Park B C, Yoon S, et al. Analytic network process-based study of the importance and interconnectivity of facilities under volcanic ash risk[J]. Natural Hazards, 2025, 121 (4): 4155.
doi: 10.1007/s11069-024-06963-w |
| [1] | 苗延飞, 陈海昕, 高原, 张旭, 蔡清. 基于MCP的无人集群作战效能评估方法[J]. 系统工程与电子技术, 2026, 48(8): 2648-2658. |
| [2] | 张超, 房颖涛, 董志杰, 何世烈, 周振威. 基于模糊网络层次分析和群决策的测试性指标分配方法[J]. 系统工程与电子技术, 2025, 47(8): 2570-2580. |
| [3] | 杨松, 王涛, 李小波, 何华, 孙吉东. 异构无人集群杀伤网任务路径生成建模与评估[J]. 系统工程与电子技术, 2025, 47(10): 3278-3287. |
| [4] | 张堃, 华帅, 袁斌林, 杜睿怡. 基于Multi-Agent的无人机集群体系自主作战系统设计[J]. 系统工程与电子技术, 2024, 46(4): 1273-1286. |
| [5] | 郑丽莎, 尹东亮, 王旋. 基于改进D-S证据理论的相控阵雷达作战效能评估[J]. 系统工程与电子技术, 2024, 46(4): 1330-1336. |
| [6] | 赵蕊蕊, 于海跃, 游雅倩, 张涛, 陶敏, 姜江. 无人集群试验评估现状及技术方法综述[J]. 系统工程与电子技术, 2024, 46(2): 570-585. |
| [7] | 谢震海, 何明, 禹明刚, 余烤华, 袁国栋. 面向策略多样性的无人集群合作演化建模及仿真[J]. 系统工程与电子技术, 2023, 45(9): 2852-2859. |
| [8] | 张毅, 于浩, 杨秀霞, 姜子劼. 异构无人集群分组编队自适应跟踪-合围控制[J]. 系统工程与电子技术, 2023, 45(10): 3274-3285. |
| [9] | 邓嘉宁, 吴宇, 许舒婷, 苟进展. 基于模糊贝叶斯-ANP舰载机出动回收综合评估[J]. 系统工程与电子技术, 2022, 44(11): 3423-3432. |
| [10] | 禹明刚, 何明, 张东戈, 马子玉, 康凯. 基于多元公共品演化博弈的无人作战集群策略占优条件[J]. 系统工程与电子技术, 2021, 43(9): 2553-2561. |
| [11] | 郧奇佳, 宋笔锋, 裴扬, 王冠坤. 基于Agent建模的机载激光武器系统作战效能影响因素分析[J]. 系统工程与电子技术, 2020, 42(4): 826-835. |
| [12] | 禹明刚, 张东戈, 康凯, 朱卫星. 基于多元公共品演化博弈的无人集群合作演化机制[J]. 系统工程与电子技术, 2020, 42(12): 2787-2794. |
| [13] | 罗承昆, 陈云翔, 项华春, 王莉莉. 装备体系贡献率评估方法研究综述[J]. 系统工程与电子技术, 2019, 41(8): 1789-1794. |
| [14] | 游雅倩, 姜江, 孙建彬, 赵丹玲, 杨克巍. 基于证据网络的装备体系贡献率评估方法研究[J]. 系统工程与电子技术, 2019, 41(8): 1780-1788. |
| [15] | 杨克巍, 杨志伟, 谭跃进, 赵青松. 面向体系贡献率的装备体系评估方法研究综述[J]. 系统工程与电子技术, 2019, 41(2): 311-321. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||