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Multi-agent cloud based license plate recognition system

机译:多智能体云端车牌识别系统

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© 2024 Institute of Advanced Engineering and Science. All rights reserved.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.
机译:© 2024 高级工程与科学研究所。保留所有权利。本文提出了一种多智能体车牌识别系统,专门设计用于解决车牌的多样性和挑战性。该系统采用多代理架构,代理在单独的 Docker 容器中运行,并由 Kubernetes 编排,表现出卓越的适应性和可扩展性。它利用在综合数据集上训练的高级神经网络,在动态条件下准确识别各种车牌类型。该系统的功效通过其三层方法展示出来,包括数据收集、处理和结果编译,大大优于传统的车牌识别 (LPR) 系统。这项创新不仅标志着车牌识别的技术飞跃,而且为加强全球交通管理和智能城市基础设施提供了战略解决方案。

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