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An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †

With the development of artificial intelligence and big data analytics, an increasing number of researchers have tried to use deep-learning technology to train neural networks and achieved great success in the field of vehicle detection. However, as a special domain of object detection, vehicle dete...

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Detalles Bibliográficos
Autores principales: Wang, Bin, Gu, Yinjuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7506659/
https://www.ncbi.nlm.nih.gov/pubmed/32825471
http://dx.doi.org/10.3390/s20174709
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author Wang, Bin
Gu, Yinjuan
author_facet Wang, Bin
Gu, Yinjuan
author_sort Wang, Bin
collection PubMed
description With the development of artificial intelligence and big data analytics, an increasing number of researchers have tried to use deep-learning technology to train neural networks and achieved great success in the field of vehicle detection. However, as a special domain of object detection, vehicle detection in aerial images still has made limited progress because of low resolution, complex backgrounds and rotating objects. In this paper, an improved feature-balanced pyramid network (FBPN) has been proposed to enhance the network’s ability to detect small objects. By combining FBPN with modified faster region convolutional neural network (faster-RCNN), a vehicle detection framework for aerial images is proposed. The focal loss function is adopted in the proposed framework to reduce the imbalance between easy and hard samples. The experimental results based on the VEDIA, USCAS-AOD, and DOTA datasets show that the proposed framework outperforms other state-of-the-art vehicle detection algorithms for aerial images.
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spelling pubmed-75066592020-09-26 An Improved FBPN-Based Detection Network for Vehicles in Aerial Images † Wang, Bin Gu, Yinjuan Sensors (Basel) Article With the development of artificial intelligence and big data analytics, an increasing number of researchers have tried to use deep-learning technology to train neural networks and achieved great success in the field of vehicle detection. However, as a special domain of object detection, vehicle detection in aerial images still has made limited progress because of low resolution, complex backgrounds and rotating objects. In this paper, an improved feature-balanced pyramid network (FBPN) has been proposed to enhance the network’s ability to detect small objects. By combining FBPN with modified faster region convolutional neural network (faster-RCNN), a vehicle detection framework for aerial images is proposed. The focal loss function is adopted in the proposed framework to reduce the imbalance between easy and hard samples. The experimental results based on the VEDIA, USCAS-AOD, and DOTA datasets show that the proposed framework outperforms other state-of-the-art vehicle detection algorithms for aerial images. MDPI 2020-08-20 /pmc/articles/PMC7506659/ /pubmed/32825471 http://dx.doi.org/10.3390/s20174709 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Bin
Gu, Yinjuan
An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title_full An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title_fullStr An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title_full_unstemmed An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title_short An Improved FBPN-Based Detection Network for Vehicles in Aerial Images †
title_sort improved fbpn-based detection network for vehicles in aerial images †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7506659/
https://www.ncbi.nlm.nih.gov/pubmed/32825471
http://dx.doi.org/10.3390/s20174709
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