Real-Time Target Detection Method for UAV Embedded Platform

Qin Yao, Yang Liu, Deyun Zhou, Lu Wei

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

Abstract

With the continuous development of UAV embedded platform in the direction of small size, low power consumption and low cost, the real-time object detection method deployed on it has become a research hotspot in the field of deep learning. Most of the existing mainstream target detection methods are based on large model design, which has the characteristics of complex architecture and huge calculation amount, and the detection accuracy is low when there is similar interference to the target in the UAV aerial image, which is difficult to deploy to the UAV embedded platform to meet the application requirements of real-time accurate detection. In this paper, a real-time object detection method deployed on embedded platform is proposed. Based on the idea of full convolutional architecture, a lightweight model based on twin network is designed, which makes the method have high real-time and detection accuracy. On the self-built ship data set, the detection accuracy can reach 87.35%, and the detection speed can reach 40FPS on the embedded platform, which meets the application requirements of real-time accurate detection.

Original languageEnglish
Title of host publication2024 7th International Conference on Pattern Recognition and Artificial Intelligence, PRAI 2024
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages889-892
Number of pages4
ISBN (Electronic)9798350350890
DOIs
StatePublished - 2024
Event7th International Conference on Pattern Recognition and Artificial Intelligence, PRAI 2024 - Hangzhou, China
Duration: 15 Aug 202417 Aug 2024

Publication series

Name2024 7th International Conference on Pattern Recognition and Artificial Intelligence, PRAI 2024

Conference

Conference7th International Conference on Pattern Recognition and Artificial Intelligence, PRAI 2024
Country/TerritoryChina
CityHangzhou
Period15/08/2417/08/24

Keywords

  • drone aerial images
  • embedded platform
  • target detection
  • twin network

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