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Manned-Unmanned Teaming Air-to-Air Combat Tactic Development Using Longshot Unmanned Aerial Vehicle

롱샷 무인기를 활용한 유무인 협업 공대공 전술 개발

  • Yoo, Seunghoon (Department of Computer Science, Korea Air Force Academy) ;
  • Park, Myunghwan (Department of Computer Science, Korea Air Force Academy) ;
  • Hwang, Seongin (Department of Electronics & Telecommunication Engineering, Korea Air Force Academy) ;
  • Seol, Hyeonju (School of Integrated National Security, Chungnam National University)
  • 유승훈 (공군사관학교 컴퓨터과학과) ;
  • 박명환 (공군사관학교 컴퓨터과학과) ;
  • 황성인 (공군사관학교 전자통신공학과) ;
  • 설현주 (충남대학교 국가안보융합학부)
  • Received : 2021.08.05
  • Accepted : 2021.09.24
  • Published : 2021.09.30

Abstract

Manned-unmanned teaming can be a very promising air-to-air combat tactic since it can maximize the advantage of combining human insight with the robustness of the machine. The rapid advances in artificial intelligence and autonomous control technology will speed up the development of manned-unmanned teaming air-to-air combat system. In this paper, we introduce a manned-unmanned teaming air-to-air combat tactic which is composed of a manned aircraft and an UAV. In this tactic, a manned aircraft equipped with radar is functioning both as a sensor to detect the hostile aircraft and as a controller to direct the UAV to engage the hostile aircraft. The UAV equipped with missiles is functioning as an actor to engage the hostile aircraft. We also developed a combat scenario of executing this tactic where the manned-unmanned teaming is engaging a hostile aircraft. The hostile aircraft is equipped with both missiles and radar. To demonstrate the efficiency of the tactic, we run the simulation of the scenario of the tactic. Using the simulation, we found the optimal formation and maneuver for the manned-unmanned teaming where the manned-unmanned teaming can survive while the hostile aircraft is shot-downed. The result of this study can provide an insight to how manned aircraft can collaborate with UAV to carry out air-to-air combat missions.

Keywords

Acknowledgement

This work was funded by grants from Agency for Defense Development (ADD) of Republic of Korea (Grant UD200021JD)

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