5G中的计算机视觉辅助即时警报

Yu-Yun Tseng, Po-Min Hsu, Jen-Jee Chen, Y. Tseng
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引用次数: 9

摘要

本文介绍了一种结合车载单元(OBU)数据和路边视频信息的创新模型,为驾驶员提供即时警报信息。我们应用计算机视觉技术来执行实时危险事件检测,并识别周围应该发出警报的特定车辆。与传统的基于广播的警报不同,我们提出将这些即时警报信息通过单播和地球广播的方式发送给目标车辆。要做到这一点,需要一种准确的方法来分析车辆的空间关系。此外,为了将我们的警报信息限制在目标车辆上,我们依靠路边摄像头并应用传感器融合技术,该技术可以将视频对象与其通信MAC地址联系起来。通过这一创新理念,我们将计算机视觉与5G网络相结合,能够在不干扰无关车辆的情况下向精确车辆发送即时警报。本文还讨论了如何通过设置合适的传输参数将系统与3GPP V2X集成。为了验证我们的想法,我们展示了四种常见的道路危险事件,并展示了我们的模型是如何工作的。据我们所知,这是第一次将计算机视觉应用于即时通讯。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computer Vision-Assisted Instant Alerts in 5G
This paper introduces an innovative model which incorporates vehicle On-Board Unit (OBU) data and roadside video information to provide instant alert messages to drivers. We apply computer vision techniques to perform real-time danger event detection and to identify specific surrounding vehicles that should be alerted. Different from traditional broadcast-based alerting, we propose to send these instant alert messages to the target vehicles by unicast and geocast. To do so, an accurate method is required to analyze the spatial relation of vehicles. Also, to confine our alert messages to only those target vehicles, we rely on roadside cameras and apply a sensor fusion technique that can link a video object with its communication MAC address. Through this innovative idea, we integrate computer vision with 5G networks and enable transmitting instant alerts to precise vehicles without interfering irrelevant vehicles. How to incorporate our system with 3GPP V2X by setting proper transmission parameters is also addressed. To validate our idea, we present four common road danger events and show how our model works. To the best of our knowledge, this is the first work bringing computer vision to instant messaging.
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