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Article Dans Une Revue Sensors Année : 2019

Edge-Computing Video Analytics for Real-Time Traffic Monitoring in a Smart City

Résumé

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.

Dates et versions

hal-03108201 , version 1 (13-01-2021)

Licence

Paternité - Pas d'utilisation commerciale - Pas de modification

Identifiants

Citer

Johan Barthélemy, Nicolas Verstaevel, Hugh Forehead, Pascal Perez. Edge-Computing Video Analytics for Real-Time Traffic Monitoring in a Smart City. Sensors, 2019, 19 (9), pp.2048. ⟨10.3390/s19092048⟩. ⟨hal-03108201⟩
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