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空天防御  2025, Vol. 8 Issue (3): 1-13    
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基于数字孪生的防空反导数智平行战场构建方法研究
王刚1, 杨科2, 权文1, 郭相科1, 赵小茹1
1. 空军工程大学 防空反导学院,陕西 西安 710051; 2. 空军工程大学 研究生院,陕西 西安 710051
Research on Construction Method of Digital-Intelligent Parallel Battlefield for Air Defense and Anti-Missile Based on Digital Twin
WANG Gang1, YANG Ke2, QUAN Wen1, GUO Xiangke1, ZHAO Xiaoru1
1. Air Defense and Anti-Missile College, Air Force Engineering University, Xi'an 710051, Shaanxi, China; 2. Graduat School, Air Force Engineering University, Xi'an 710051, Shaanxi, China
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摘要 构建“研、战、试、实、训”一体化功能的数字化平行战场,是提升作战指挥与联合训练能力、应对未来大国智能化高端战争的有效支撑手段。针对防空反导领域数字化平行战场构建时所面临的复杂场景难构设、虚实兵力难交互、作战行为难仿真等难题,本文采用基于模型的系统工程(Model-Based System Engineering, MBSE)数字孪生建模方法,实现复杂场景精确构设;建立基于LVC(Live-Virtual-Constructive)的虚实结合分布式仿真体系架构,实现虚实交互与高效协同;提出规则与数据双驱动的Agent模型建模方法,实现防空反导作战智能行为仿真;构建面向平行战场的多分支仿真推演与辅助决策框架,实现战场态势分析、方案生成及评估优选的有机统一;运用软件定义方法完成系统开发,实现系统资源动态调度、灵活重构与敏捷部署。研究结果表明,基于数字孪生理念构建的防空反导新型数智化平行战场,可为防空反导领域装备试验、作战实验、联合训练及指挥决策等多场景仿真应用提供技术支撑。
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关键词 数智战场防空反导体系仿真数字孪生平行系统    
Abstract:The establishment of a digital parallel battlefield that integrates the functions of "research, combat, testing, practical operation, and training" serves as an effective and essential supporting measure for enhancing combat command and joint training capabilities, which address future intelligent high-end warfare among major powers. In the air defense and anti-missile realm, constructing a digital parallel battlefield faces several formidable challenges, including configuring complex scenarios, facilitating interactions between virtual and real forces, and simulating combat behaviours. To tackle these issues, the paper employed a digital twin modelling approach grounded in Model-Based Systems Engineering (MBSE) to enable the precise configuration of complex scenarios. Based on the Live-Virtual-Constructive (LVC) concept, a distributed simulation architecture combining virtual and real elements was established to realise seamless virtual-real interactions and efficient coordination. In addition, an Agent modelling methodology based on data/rules dual-driven was introduced to simulate intelligent combat behaviours in air defense and anti-missile operations. A multi-branch simulation deduction and auxiliary decision-making framework tailored for the parallel battlefield was constructed, achieving the organic integration of situation analysis, plan formulation, and evaluation for optimal selection. The system development was accomplished by applying the software-defined method, enabling dynamic scheduling of system resources, flexible reconfiguration, and agile deployment. The research results indicate that the newly developed digital-intelligent parallel battlefield for air defense and anti-missile, constructed by the concept of the digital twin, provides robust support for simulation applications across multiple scenarios, including equipment testing, combat experiments, joint training, and command decision-making within the domain of air defense and anti-missile.
Key wordsdigital-intelligent battlefield    air defense and anti-missile    system simulation    digital twin    parallel system
收稿日期: 2025-01-06      出版日期: 2025-07-15
ZTFLH:  V 57  
基金资助:国家自然科学基金项目(62402521)
通讯作者: 权文   
作者简介: 王刚(1975—),男,博士,教授,博士生导师。
引用本文:   
王刚, 杨科, 权文, 郭相科, 赵小茹. 基于数字孪生的防空反导数智平行战场构建方法研究[J]. 空天防御, 2025, 8(3): 1-13.
WANG Gang, YANG Ke, QUAN Wen, GUO Xiangke, ZHAO Xiaoru. Research on Construction Method of Digital-Intelligent Parallel Battlefield for Air Defense and Anti-Missile Based on Digital Twin. Air & Space Defense, 2025, 8(3): 1-13.
链接本文:  
https://www.qk.sjtu.edu.cn/ktfy/CN/      或      https://www.qk.sjtu.edu.cn/ktfy/CN/Y2025/V8/I3/1

参考文献
[1] 邱子彰, 汪达旺, 陆志沣, 伍国华. 基于禁忌搜索的照射器资源调度方法[J]. 空天防御, 2025, 8(3): 132-140.
[2] 杜君南, 帅逸仙, 陈顶, 汪敏, 周金鹏. 基于约束强化学习的海上编队探测节点协同部署算法[J]. 空天防御, 2025, 8(3): 95-103.
[3] 张思霈, 徐天洋, 康传华, 慈慧鹏, 刘瑞. 数字平行战场:理论综述与发展展望[J]. 空天防御, 2025, 8(3): 29-39.
[4] 钱晓超, 王之豪, 陆志沣. 数字平行战场技术研究与探索[J]. 空天防御, 2025, 8(3): 14-22.
[5] 倪明, 杨阳, 梁壮. 美陆军一体化防空反导系统发展研究与启示[J]. 空天防御, 2025, 8(2): 27-33.
[6] 王创维, 黄雨辰, 王聪, 葛鲁亲. 2024年国外防空反导领域进展及发展启示[J]. 空天防御, 2025, 8(2): 18-26.
[7] 李龙跃, 王文豪, 皮雳, 贾忠慧, 赵慧珍. 防空反导作战模拟推演分析方法综述[J]. 空天防御, 2025, 8(1): 48-53.
[8] 李逸豪, 李汶洁, 蔡晟, 陈国铃. 基于数字孪生的空间电源产品测试系统建设与应用[J]. 空天防御, 2024, 7(5): 120-126.
[9] 崔闪, 潘俊杨, 王伟, 郭叶, 许江涛. 基于深度学习的防空反导拦截决策研究[J]. 空天防御, 2024, 7(5): 54-64.
[10] 许文腾, 刘磊, 刘梦觉. 基于混合推进机制的海上防空反导作战推演系统设计[J]. 空天防御, 2024, 7(3): 111-116.
[11] 张迪, 王辉, 安国琛, 顾村锋, 樊田峥. 智能感知在防空反导OODA环中的应用[J]. 空天防御, 2024, 7(1): 1-5.
[12] 赖文星, 贾军, 鲍然, 丁士洲. 基于多目标优化的防空武器拦截方案设计方法[J]. 空天防御, 2019, 2(4): 1-6.
[13] 孙全, 高雅, 陈宇威, 黄楷. 全域作战理论下陆军防空反导装备发展思考[J]. 空天防御, 2018, 1(3): 1-4.
[14] 刘兵, 张法宏, 贾海鹏, 薛杰. 未来防空战场环境特点及美陆军防空反导装备发展分析[J]. 空天防御, 2018, 1(1): 8-12.
[15] 孟光, 孔晓俊. 基于天地一体信息网络的防空反导反临装备发展思考[J]. 空天防御, 2018, 1(1): 1-7.
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