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Detection and recognition of UA targets with multiple sensors

  • W. S. Chen*
  • , X. L. Chen
  • , J. Liu
  • , Q. B. Wang
  • , X. F. Lu
  • , Y. F. Huang
  • *Corresponding author for this work
  • China Academy of Civil Aviation Science and Technology
  • Naval Aviation University

Research output: Contribution to journalReview articlepeer-review

Abstract

Modern low-altitude unmanned aircraft (UA) detection and surveillance systems mostly adopt the multi-sensor fusion technology scheme of radar, visible light, infrared, acoustic and radio detection. Firstly, this paper summarises the latest research progress of UA and bird target detection and recognition technology based on radar, and provides an effective way of detection and recognition from the aspects of echo modeling and micro motion characteristic cognition, manoeuver feature enhancement and extraction, motion trajectory difference, deep learning intelligent classification, etc. Furthermore, this paper also analyses the target feature extraction and recognition algorithms represented by deep learning for other kinds of sensor data. Finally, after a comparison of the detection ability of various detection technologies, a technical scheme for low-altitude UA surveillance system based on four types of sensors is proposed, with a detailed description of its main performance indicators.

Original languageEnglish
Pages (from-to)167-192
Number of pages26
JournalAeronautical Journal
Volume127
Issue number1308
DOIs
StatePublished - 1 Feb 2023

Keywords

  • Deep learning
  • Detection
  • Information fusion
  • Multi-sensor
  • UA

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