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Computer Optics, 2021, Volume 45, Issue 4, Pages 575–579
DOI: https://doi.org/10.18287/2412-6179-CO-804
(Mi co942)
 

This article is cited in 4 scientific papers (total in 4 papers)

IMAGE PROCESSING, PATTERN RECOGNITION

Investigation of the applicability of the convolutional neural network U-Net to a problem of segmentation of aircraft images

D. A. Gavrilovab

a Lebedev Institute of Precise Mechanics and Computer Engineering, Russian Academy of Sciences, Russian Federation, Moscow, 51, Leninskiy boulevard, 119991
b Moscow Institute of Physics and Technology, Russian Federation, 9 Institutskiy per., Dolgoprudny, Moscow Region, 141701
References:
Abstract: The paper investigates the applicability of the convolutional neural network "U-Net" to a problem of segmentation of aircraft images. The neural network image segmentation method is based on the "Carvana" implementation with the "U-Net" architecture. For orientation recognition, a neural network built in the Keras open neural network library based on the pretrained VGG16 neural network is used. The approach considered allows the image segmentation to be conducted. The results of the experiments have shown the possibility of a fairly accurate selection of the object of interest. The resulting binary masks make it possible to visually classify the aircraft in the image.
Keywords: technical vision, detection, localization, neural network, recognition, image processing.
Received: 01.09.2020
Accepted: 19.04.2021
Document Type: Article
Language: Russian
Citation: D. A. Gavrilov, “Investigation of the applicability of the convolutional neural network U-Net to a problem of segmentation of aircraft images”, Computer Optics, 45:4 (2021), 575–579
Citation in format AMSBIB
\Bibitem{Gav21}
\by D.~A.~Gavrilov
\paper Investigation of the applicability of the convolutional neural network U-Net to a problem of segmentation of aircraft images
\jour Computer Optics
\yr 2021
\vol 45
\issue 4
\pages 575--579
\mathnet{http://mi.mathnet.ru/co942}
\crossref{https://doi.org/10.18287/2412-6179-CO-804}
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  • https://www.mathnet.ru/eng/co942
  • https://www.mathnet.ru/eng/co/v45/i4/p575
  • This publication is cited in the following 4 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Computer Optics
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    References:15
     
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