An Air Combat UCAV Autonomous Maneuver Decision Method Based on LSTM Network and MCDTS

Fangyuan Dang, Huaguang Zhu, Xin Ning

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

This paper studies the integrated process of air combat UCAV action recognition and autonomous maneuver decision-making in combination with the aerial battlefield situation. The key points of this paper are recognizing the maneuver action of UCAV under limited information sets and generating the optimal maneuver strategies for autonomous decision-making when confronting an intelligent enemy. By introducing a large number of air combat data sets to train the LSTM network, and inputting the real-time information of the enemy into the network, the maneuver type can be recognized as auxiliary information for the Monte Carlo double tree search (MCDTS) autonomous decision process. The UCT function of the search tree is designed as a combination of the game process reward and the air combat result reward, which can guide the decision tree to approach the optimal maneuver strategies more reasonably and faster. The simulation results of air combat show that the strategy is feasible when confronting an intelligent enemy.

Original languageEnglish
Title of host publicationProceedings of 2022 International Conference on Autonomous Unmanned Systems, ICAUS 2022
EditorsWenxing Fu, Mancang Gu, Yifeng Niu
PublisherSpringer Science and Business Media Deutschland GmbH
Pages857-866
Number of pages10
ISBN (Print)9789819904785
DOIs
StatePublished - 2023
EventInternational Conference on Autonomous Unmanned Systems, ICAUS 2022 - Xi'an, China
Duration: 23 Sep 202225 Sep 2022

Publication series

NameLecture Notes in Electrical Engineering
Volume1010 LNEE
ISSN (Print)1876-1100
ISSN (Electronic)1876-1119

Conference

ConferenceInternational Conference on Autonomous Unmanned Systems, ICAUS 2022
Country/TerritoryChina
CityXi'an
Period23/09/2225/09/22

Keywords

  • Action recognition
  • Air combat
  • Autonomous maneuver decision

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