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Multi-agent cloud based license plate recognition system

Ben Laoula, El MehdiElfahim, OmarEl Midaoui, MarouaneYoussfi, MohamedBouattane, Omar
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 Agustus 2024
DOI10.11591/ijece.v14i4.pp4590-4601

Abstrak

This paper presents a multi-agent license plate recognition system, specifically designed to address the diverse and challenging nature of license plates. Utilizing a multi-agent architecture with agents operating in individual Docker containers and orchestrated by Kubernetes, the system demonstrates remarkable adaptability and scalability. It leverages advanced neural networks, trained on a comprehensive dataset, to accurately identify various license plate types under dynamic conditions. The system’s efficacy is showcased through its three-layered approach, encompassing data collection, processing, and result compilation, significantly outperforming traditional license plate recognition (LPR) systems. This innovation not only marks a technological leap in license plate recognition but also offers strategic solutions for enhancing traffic management and smart city infrastructure globally.

Kata Kunci

Cloud computingDocker and kubernetesInternet of thingsLicense plate recognitionMulti-agent systemsNeural networksTraffic management

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Multi-agent cloud based license plate recognition system | International Journal of Electrical and Computer Engineering (IJECE) | Publiora