Article (Scientific journals)
Assembling Three One-Camera Images for Three-Camera Intersection Classification
Astrid, Marcella; Lee, Seung-Ik
2023In ETRI Journal, 45 (5), p. 862-873
Peer reviewed
 

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Keywords :
augmentation; intersection classification; transfer learning; deep learning; computer vision
Abstract :
[en] Determining whether an autonomous self-driving agent is in the middle of an intersection can be extremely difficult when relying on visual input taken from a single camera. In such a problem setting, a wider range of views is essential, which drives us to use three cameras positioned in the front, left, and right of an agent for better intersection recognition. However, collecting adequate training data with three cameras poses several practical difficulties; hence, we propose using data collected from one camera to train a three-camera model, which would enable us to more easily compile a variety of training data to endow our model with improved generalizability. In this work, we provide three separate fusion methods (feature, early, and late) of combining the information from three cameras. Extensive pedestrian-view intersection classification experiments show that our feature fusion model provides an area under the curve and F1-score of 82.00 and 46.48, respectively, which considerably outperforms contemporary three- and one-camera models.
Disciplines :
Computer science
DOI :
10.4218/etrij.2023-0100
Author, co-author :
Astrid, Marcella ;  University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > CVI2
Lee, Seung-Ik;  Electronics and Telecommunications Research Institute > Field Robotics Research Section
External co-authors :
yes
Language :
English
Title :
Assembling Three One-Camera Images for Three-Camera Intersection Classification
Publication date :
29 October 2023
Journal title :
ETRI Journal
ISSN :
1225-6463
Publisher :
Electronics and Telecommunications Research Institute (E.T.R.I.)
Special issue title :
Autonomous Unmanned Aerial/Ground Vehicles and their Applications
Volume :
45
Issue :
5
Pages :
862-873
Peer reviewed :
Peer reviewed
Available on ORBilu :
since 07 September 2023

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