Radio-based Traffic Flow Detection and Vehicle Classification for Future Smart Cities

January 10, 2018 Β· Declared Dead Β· πŸ› IEEE Vehicular Technology Conference

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Authors Marcus Haferkamp, Manar Al-Askary, Dennis Dorn, Benjamin Sliwa, Lars Habel, Michael Schreckenberg, Christian Wietfeld arXiv ID 1801.03317 Category cs.NI: Networking & Internet Citations 38 Venue IEEE Vehicular Technology Conference Last Checked 6 months ago
Abstract
Intelligent Transportation Systems (ITSs) providing vehicle-related statistical data are one of the key components for future smart cities. In this context, knowledge about the current traffic flow is used for travel time reduction and proactive jam avoidance by intelligent traffic control mechanisms. In addition, the monitoring and classification of vehicles can be used in the field of smart parking systems. The required data is measured using networks with a wide range of sensors. Nevertheless, in the context of smart cities no existing solution for traffic flow detection and vehicle classification is able to guarantee high classification accuracy, low deployment and maintenance costs, low power consumption and a weather-independent operation while respecting privacy. In this paper, we propose a radiobased approach for traffic flow detection and vehicle classification using signal attenuation measurements and machine learning algorithms. The results of comprehensive measurements in the field prove its high classification success rate of about 99%.
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