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首页> 外文期刊>International Journal of Intelligent Systems >Deep learning and mobile control system for hazardous materials transportation
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Deep learning and mobile control system for hazardous materials transportation

机译:危险材料运输深层学习和移动控制系统

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摘要

Artificial intelligence is a powerful tool to learn and predict traffic effects according to drivers' behavior and make effective predictions to support traffic management team. This paper presents a proposal using reinforcement deep learning, simulation, and performance analysis of road systems with improvement in hazardous materials transportation control. The analysis reports the reduction of accident detection time and damages caused by traffic jams. The use of smartphone sensors, artificial intelligence, and an integrated control system for tracking, management, monitoring, and control of hazardous materials transportation allows for the reduction in detection time.
机译:人工智能是一种强大的工具,可以根据驱动程序的行为学习和预测交通影响,并有效预测支持交通管理团队。 本文介绍了利用危险材料运输控制改善的道路系统的强化深度学习,仿真和性能分析的提案。 分析报告了交通拥堵引起的事故检测时间和损害的减少。 使用智能手机传感器,人工智能和综合控制系统进行跟踪,管理,监控和控制危险材料运输,允许减少检测时间。

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