Edge-Computing Video Analytics for Real-Time Traffic Monitoring in a Smart City
Johan Barthélemy, Nicolas Verstaevel, Hugh Forehead, Pascal Perez
University of Wollongong SMART Global Holdings (United States) SMART Reading Institut de Recherche en Informatique de Toulouse
内容与影响
The increasing development of urban centers brings serious challenges for traffic management. In this paper, we introduce a smart visual sensor, developed for a pilot project taking place in the Australian city of Liverpool (NSW). The project’s aim was to design and evaluate an edge-computing device using computer vision and deep neural networks to track in real-time multi-modal transportation while ensuring citizens’ privacy. The performance of the sensor was evaluated on a town center dataset. We also introduce the interoperable Agnosticity framework designed to collect, store and access data from multiple sensors, with results from two real-world experiments.
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计算机 / AIIoT and Edge/Fog Computing
Air Quality Monitoring and Forecasting · Traffic Prediction and Management Techniques
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