A Predator-prey Particle Swarm Optimization Approach to Multiple UCAV Air Combat Modeled by Dynamic Game Theory

被引:34
作者
Haibin Duan [1 ]
Pei Li [1 ]
Yaxiang Yu [1 ]
机构
[1] the Science and Technology on Aircraft Control Laboratory,School of Automation Science and Electrical Engineering,Beihang University (BUAA)
基金
中国国家自然科学基金;
关键词
Unmanned combat aerial vehicle(UCAV); game theory; air combat; predator-prey; particle swarm optimization(PSO); Nash equilibrium;
D O I
暂无
中图分类号
E926.3 [各种军用飞机];
学科分类号
0826 ; 082601 ;
摘要
Dynamic game theory has received considerable attention as a promising technique for formulating control actions for agents in an extended complex enterprise that involves an adversary. At each decision making step, each side seeks the best scheme with the purpose of maximizing its own objective function. In this paper, a game theoretic approach based on predatorprey particle swarm optimization(PP-PSO) is presented, and the dynamic task assignment problem for multiple unmanned combat aerial vehicles(UCAVs) in military operation is decomposed and modeled as a two-player game at each decision stage. The optimal assignment scheme of each stage is regarded as a mixed Nash equilibrium, which can be solved by using the PP-PSO. The effectiveness of our proposed methodology is verified by a typical example of an air military operation that involves two opposing forces: the attacking force Red and the defense force Blue.
引用
收藏
页码:11 / 18
页数:8
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