• 中国计算机学会会刊
  • 中国科技核心期刊
  • 中文核心期刊

Computer Engineering & Science ›› 2022, Vol. 44 ›› Issue (01): 159-164.

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Recognition  and division of aircraft flight action based on MRF model

YAN Ting-long1,LI Ying2,WANG Feng-qin2   

  1. (1.College of Coastal Defense,Naval Aviation University,Yantai 264001;

    2.College of Basic Sciences for Aviation,Naval Aviation University,Yantai 264001,China)
  • Received:2020-08-06 Revised:2020-11-18 Accepted:2022-01-25 Online:2022-01-25 Published:2022-01-13

Abstract: Military aircraft flight action have strong randomness and ambiguity. In order to realize the recognition and division of military aircraft flight action, a Markov Random Field (MRF) based recognition and division algorithm is proposed. The flight data segment is divided and clustered to realize the recognition and division of flight actions. Simulation experiments show that, compared with traditional flight action  recognition algorithms, the flight action recognition algorithm based on the MRF model has a higher recognition rate.



Key words: Markov random field, action recognition, multivariate time series, clustering