Details of Research Outputs

TitleDetection of Invisible/Occluded Vehicles Using Passive RFIDs
Creator
Date Issued2023
Conference Name6th EAI International Conference, INTSYS 2022
Source PublicationIntelligent Transport Systems: 6th EAI International Conference, INTSYS 2022, Lisbon, Portugal, December 15-16, 2022, Proceedings
EditorAna Lucia Martins, Joao C. Ferreira, Alexander Kocian, Ulpan Tokkozhina
ISSN1867-8211
VolumeLecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering (LNICST, volume 486)
Pages166-181
Conference DateDecember 15-16, 2022
Conference PlaceLisbon, Portugal
Publication PlaceCham
PublisherSpringer
Abstract

Vehicle detection in autonomous driving could be very challenging under adverse road conditions. The problem has been studied intensively. However, recent studies have shown that the problem remains unsolved, especially when the vehicles are occluded or under low-light conditions. This paper adopts a different approach to vehicle detection by taking advantage of RFID technology. Specifically, RFID tags are attached to the vehicle's surfaces, and then a system is designed to detect, locate, and track those tags dynamically. In addition, RFIDs are allowed to store user data on chips. To fully utilize this feature, this paper develops an algorithm to select and store the most critical information in tags for recovering the boundaries of occluded vehicles and finding the vehicle’s location and orientation. The proposed method achieves the following objectives: (1) Vehicles could be detected at a relatively long distance in any conditions (including low-light or adverse weather). (2) The boundary of the occluded vehicle could be recovered. (3) Vehicles are still detectable even if they are turned off. (4) The implementation is relatively simple. The evaluation results have shown that the proposed method is able to detect a vehicle's orientation and rotation and recover the boundary for an occluded vehicle.

KeywordAutonomous driving orientation estimation RFID tags shape approximation vehicle detection vehicle safety
DOI10.1007/978-3-031-30855-0_12
URLView source
Language英语English
Scopus ID2-s2.0-85161496203
Citation statistics
Document TypeConference paper
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/11641
CollectionFaculty of Science and Technology
Affiliation
Guangdong Provincial Key Laboratory of Interdisciplinary Research and Application for Data Science,Faculty of Science and Technology,BNU-HKBU United International College,Zhuhai,519000,China
First Author AffilicationFaculty of Science and Technology
Recommended Citation
GB/T 7714
Hou, Ricky Yuen Tan. Detection of Invisible/Occluded Vehicles Using Passive RFIDs[C]//Ana Lucia Martins, Joao C. Ferreira, Alexander Kocian, Ulpan Tokkozhina. Cham: Springer, 2023: 166-181.
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