| 1 |
邱日升, 潘继飞, 赵君, 等. 基于组合赋权的ELINT系统效能评估算法[J]. 现代雷达, 2020, 42 (8): 13- 18.
|
|
QIU R S, PAN J F, ZHAO J, et al. Efficient evaluation algorithm for ELINT system based on combination weighting[J]. Modern Radar, 2020, 42 (8): 13- 18.
|
| 2 |
李明泽, 谢忠, 朱学森, 等. 基于改进层次分析法的无人机输电线路巡检能力量化研究[J]. 电气技术, 2022, 23 (12): 44- 51.
|
|
LI M Z, XIE Z, ZHU X S, et al. Research on quantification of UAV transmission line inspection capability based on improved analytic hierarchy process[J]. Electrical Engineering, 2022, 23 (12): 44- 51.
|
| 3 |
胡杰, 陈化良, 刘亮, 等. 无人机蜂群作战效能评估研究[J]. 火力与指挥控制, 2022, 47 (4): 164- 168.
|
|
HU J, CHEN H L, LIU L, et al. Research on operational effectiveness evaluation of UAV swarm[J]. Fire Control & Command Control, 2022, 47 (4): 164- 168.
|
| 4 |
沈博, 武文亮, 杨刚, 等. 基于群体OODA的无人集群系统智能评价模型及方法[J]. 航空学报, 2023, 44 (14): 328003.
|
|
SHEN B, WU W L, YANG G, et al. Evaluation models and methods for intelligence of unmanned swarm systems based on collective OODA loop[J]. Acta Aeronautica et Astronautica Sinica, 2023, 44 (14): 328003.
|
| 5 |
JAHIC J, ROITSCH R, GRZYMKOWSKI L. Knowledge-based adequacy assessment approach to support AI adoption[C]//Proc. of the IEEE 18th International Conference on Software Architecture Companion, 2021: 8−14.
|
| 6 |
HASSAN H A, EID M M, ELMESALAWY M M, et al. A new intelligent system for evaluating and assisting students in laboratory learning management system[C]//Proc. of the 14th International Conference on Computational Intelligence and Communication Networks, 2022: 566−571.
|
| 7 |
孔军, 朱海峰, 潘芸, 等. 基于实时信息的智能变电站二次设备状态综合评价[J]. 机电工程技术, 2023, 52 (4): 221- 226.
|
|
KONG J, ZHU H F, PAN Y, et al. Comprehensive evaluation of secondary equipment in smart substation based on real-time information[J]. Mechanical & Electrical Engineering Technology, 2023, 52 (4): 221- 226.
|
| 8 |
HE L, YUAN D L, REN L W, et al. Evaluation model research of coal mine intelligent construction based on FDEMATEL-ANP[J]. Sustainability, 2023, 15 (3): 2238.
doi: 10.3390/su15032238
|
| 9 |
PANAGIOTOPOULOS I E, KARATHANASOPOULOU K N, DIMITRAKOPOULOS G J. Risk assessment in the context of dynamic reconfiguration of level of driving automation in highly automated vehicles[C]//Proc. of the International Conference on Computational Science and Computational Intelligence, 2021: 1868−1873.
|
| 10 |
KAWAANISHI Y, NISHIHARA H, SOUMA D, et al. A study on quantitative risk assessment methods in security design for industrial control systems[C]//Proc. of the IEEE 16th Internatimal Conference on Dependable, Autonomic and Secure Computing, 2018: 62−69.
|
| 11 |
HAN Y M, FANG D, ZHANG H Y, et al. Evaluation of attack capability of UAV intelligent swarm based on AHP fuzzy evaluation[J]. Journal of Physics: Conference Series, 2020, 1651 (1): 012012.
doi: 10.1088/1742-6596/1651/1/012012
|
| 12 |
LIU J Y, SUN L N, ZHAO Z M. Unmanned aerial vehicle cluster distributed combat effectiveness evaluation based on DoDAF[C]//Proc. of the International Conference on Autonomous Unmanned Systems, 2022: 2264−2272.
|
| 13 |
何胜杰, 郭强, 王兴虎, 等. 基于ADC分析法优化的无人机效能评估方法[J]. 无人系统技术, 2022, 5 (2): 106- 116.
|
|
HE S J, GUO Q, WANG X H, et al. UAV effectiveness evaluation method based on optimized ADC analysis[J]. Unmanned Systems Technology, 2022, 5 (2): 106- 116.
|
| 14 |
WANG S, DU Y H, ZHAO S J, et al. Research on the construction of weaponry indicator system and intelligent evaluation methods[J]. Scientific Reports, 2023, 13 (1): 19370.
doi: 10.1038/s41598-023-46660-5
|
| 15 |
JIANG T Y, ZHOU J T, LUO X, et al. A systematic multi-layer cognitive model for intelligent machine tool[J]. Journal of Intelligent Manufacturing, 2025, 36, 4915- 4939.
doi: 10.1007/s10845-024-02481-5
|
| 16 |
WEN Z Q, WANG F, YANG N. Optimized evaluation of the quality of sensor video internet of things (VIOT) by the integration of big data and artificial intelligence[J]. Discover Computing, 2024, 27, 45.
doi: 10.1007/s10791-024-09482-1
|
| 17 |
CHEN M Z, WEI X, XIE P Z, et al. QoE oriented intelligent online learning evaluation technology in B5G scenario[J]. Digital Communications and Networks, 2024, 10 (1): 7- 15.
doi: 10.1016/j.dcan.2022.05.018
|
| 18 |
PAN P L, LIN X M, XU D. Application of analytic hierarchy process (AHP) in the evaluation of the intelligent teaching system (ITS) module[C]//Proc. of the IEEE International Conference on Advanced Infocomm Technology, 2023: 251−263.
|
| 19 |
YOUNG L, YETTER J, GUYNN M. System analysis applied to autonomy: application to high-altitude long-endurance remotely operated aircraft[EB/OL]. [2025-05-01]. https://doi.org/10.2514/6.2005-7103.
|
| 20 |
赵蒙, 王明宇, 殷双斌. 基于主客观组合赋权的变权TOPSIS弹道目标威胁评估模型[J]. 军事运筹与评估, 2023, 38 (1): 27- 33.
|
|
ZHAO M, WANG M Y, YIN S B. Variable weight TOPSIS ballistic target threat assessment model based on subjective and objective combination weighting[J]. Military Operations Research and Assessment, 2023, 38 (1): 27- 33.
|
| 21 |
彭妮娜, 殷建丰, 王倩, 等. 多层次多维度网络化航天装备效能评估方法研究[J]. 计算机仿真, 2022, 39 (7): 91- 95.
|
|
PENG N N, YIN J F, WANG Q, et al. Research on multi-level and multi-dimensional networked effectiveness evaluation method of aerospace equipment[J]. Computer Simulation, 2022, 39 (7): 91- 95.
|
| 22 |
RUSSO R, CAMANHO R. Criteria in AHP: a systematic review of literature[J]. Procedia Computer Science, 2015, 55, 1123- 1132.
doi: 10.1016/j.procs.2015.07.081
|
| 23 |
李彦斐, 姚奕. 基于OODA环的对陆攻击巡航导弹作战效能评估[J]. 舰船电子工程, 2022, 42 (11): 128- 133.
|
|
LI Y F, YAO Y. Operational effectiveness evaluation of submarine-launched land attacking cruise missile based on OODA loop[J]. Ship Electronic Engineering, 2022, 42 (11): 128- 133.
|
| 24 |
LIN Z Z, WEN F, WANG H, et al. CRITIC-based node importance evaluation in skeleton-network reconfiguration of power grids[J]. IEEE Trans. on Circuits and Systems II: Express Briefs, 2018, 65 (2): 206- 210.
|
| 25 |
ZHANG T Y, GAO T, XU P, et al. A review of AI and AI intelligence assessment[C]// Proc. of the IEEE 4th Conference on Energy Internet and Energy System Integration, 2020: 3039−3044.
|
| 26 |
王瑛, 史翔宇, 李超. 基于DoDAF的无人机协同作战效能评估[J]. 空军工程大学学报(自然科学版), 2020, 21 (6): 66- 72.
|
|
WANG Y, SHI X Y, LI C. Research on evaluation of UAV cooperative combat effectiveness based on DoDAF[J]. Journal of Air Force Engineering University, 2020, 21 (6): 66- 72.
|
| 27 |
MA S D, ZHANG H Z, YANG G Q. Target threat level assessment based on cloud model under fuzzy and uncertain conditions in air combat simulation[J]. Aerospace Science and Technology, 2017, 67, 49- 53.
doi: 10.1016/j.ast.2017.03.033
|
| 28 |
HUANG H M. Autonomy levels for unmanned systems (ALFUS) framework: safety and application issues[C]//Proc. of the Workshop on Performance Metrics for Intelligent Systems, 2007: 48−53.
|
| 29 |
HUANG Y J, ZHANG Z P, TAO Y, et al. Quantitative risk assessment of railway intrusions with text mining and fuzzy rule-based bow-tie model[J]. Advanced Engineering Informatics, 2022, 54, 101726.
doi: 10.1016/j.aei.2022.101726
|
| 30 |
WANG D, LV L, TANG J, et al. Research on establishment and method of performance evaluation index system of smart grid distribution network[C]// Proc. of the IEEE Innovative Smart Grid Technologies-Asia , 2019: 3327−3332.
|