The Development of Rule-based AI Engagement Model for Air-to-Air Combat Simulation

Minseok Lee, Jihyun Oh, Cheonyoung Kim, Jungho Bae, Yongduk Kim, Cheolkyu Jee
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引用次数: 2

Abstract

Since the concept of Manned-UnManned Teaming(MUM-T) and Unmanned Aircraft System(UAS) can efficiently respond to rapidly changing battle space, many studies are being conducted as key components of the mosaic warfare environment. In this paper, we propose a rule-based AI engagement model based on Basic Fighter Maneuver(BFM) capable of Within-Visual-Range(WVR) air-to-air combat and a simulation environment in which human pilots can participate. In order to develop a rule-based AI engagement model that can pilot a fighter with a 6-DOF dynamics model, tactical manuals and human pilot experience were configured as knowledge specifications and modeled as a behavior tree structure. Based on this, we improved the shortcomings of existing air combat models. The proposed model not only showed a 100 % winning rate in engagement with human pilots, but also visualized decision-making processes such as tactical situations and maneuvering behaviors in real time. We expect that the results of this research will serve as a basis for development of various AI-based engagement models and simulators for human pilot training and embedded software test platform for fighter.
基于规则的空对空战斗仿真AI交战模型的开发
由于有人-无人组队(MUM-T)和无人机系统(UAS)的概念可以有效地响应快速变化的作战空间,因此作为马赛克作战环境的关键组成部分,许多研究正在进行。在本文中,我们提出了一种基于规则的人工智能交战模型,该模型基于基本战斗机机动(BFM),能够进行视距内空对空作战(WVR)和人类飞行员可以参与的模拟环境。为了开发一个基于规则的人工智能交战模型,使其能够在六自由度动力学模型下驾驶战斗机,将战术手册和人类飞行员经验配置为知识规范,并将其建模为行为树结构。在此基础上,改进了现有空战模型的不足。所提出的模型不仅在与人类飞行员的接触中显示出100%的胜率,而且还可以实时可视化战术情况和机动行为等决策过程。我们期望这项研究的结果将作为开发各种基于人工智能的交战模型和模拟器,用于人类飞行员训练和战斗机嵌入式软件测试平台的基础。
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