基于TensorFlow YOLOv3的行人检测嵌入可适应车辆的便携式系统

Eduard Zadobrischi, M. Negru
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引用次数: 9

摘要

随着私家车对人口的可及性和可获得性的扩大,环境、道路安全、行人安全面临着更大的问题。最需要的信息管理通过自主系统致力于行人检测和改进分析和道路预防算法是本文解决的一个重要因素。本文的目的是展示并提出可行的解决方案,帮助驾驶员实践高效、安全和无事故的驾驶方式。本文提出了一个正在开发的原型,它可以避免各种交通事件,系统分析并提醒驾驶员行人的意图,并根据其对驾驶员和行人构成的危险程度分别标记每次检测。本研究分析并强调,在这一点上,一切都已经集中在范式上,所有这些技术都有可能在混合平台上合作,为人类用户的需求提供真正的解决方案,同时也为物联网解决方案提供解决方案。
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Pedestrian detection based on TensorFlow YOLOv3 embedded in a portable system adaptable to vehicles
With the expansion of accessibility and availability of personal cars towards the population, the environment, road safety, and pedestrian safety faces greater problems. The neediest for the management of information through autonomous systems dedicated to pedestrian detection and improvement of analysis and road prevention algorithms is an important factor addressed in this paper. The purpose of this paper is to demonstrate and propose viable solutions that will help drivers to practice an efficient, safe, and event-free driving style. This paper presents a prototype under development that can avoid various traffic events, the system analyzing, and alerting the driver regarding pedestrian intentions, marking each detection separately according to the degree of danger that it constitutes for both the driver, as well as for pedestrians. This research analyzes and emphasizes that at this point everything is already focused on the paradigm from which it is possible for all these technologies to cooperate in a hybrid platform, offering a real solution to the demands of human users but also of IoT solutions.
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