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An Intelligent IoT-based Vision System for Nighttime Vehicle Detection and Energy Saving

机译:基于智能IoT的夜间车辆检测和节能视觉系统

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摘要

In recent years, the rise of industrial societies and the Internet of Things (loT) has encouraged the growth of vehicular transportation, which, in turn, has led to intelligent transportation systems (ITSs) becoming an important field of research. In view of this, nighttime vehicle detection and the counting technique that will facilitate future research on energy saving are presented. In this work, the Hough transform was first performed to detect lane lines in an image, and subsequently, all images underwent feature enhancement processing. Next, the light source data from the detected line of each lane was obtained, and at the same time, the aspect ratio and spacing of light source pairs were computed in order to determine if they matched the set values and to perform vehicle counting. Furthermore, since driving habits differ and some vehicles would straddle the lane line, an approach to recognizing and counting lane-straddling vehicles in order to avoid misjudgments is proposed in this study. Lastly, LED lights were used to simulate street lights and controlled on the basis of the traffic volume data obtained in the manner described earlier. The experimental results show that the proposed technique could be effectively utilized to perform nighttime vehicle detection and counting since it achieved a high average correction rate of 94%, as well as a computing time of 44 frames per second.
机译:近年来,工业社会和物联网(loT)的兴起推动了车辆运输的发展,而这反过来又导致智能运输系统(ITSs)成为重要的研究领域。有鉴于此,提出了夜间车辆检测和计数技术,这将有助于未来的节能研究。在这项工作中,首先执行霍夫变换以检测图像中的车道线,然后对所有图像进行特征增强处理。接下来,获得来自每个车道的检测线的光源数据,并且同时,计算光源对的纵横比和间距,以确定它们是否与设定值匹配并进行车辆计数。此外,由于驾驶习惯各不相同,有些车辆会跨越车道线,因此在本研究中提出了一种识别和计数跨越车道的车辆以避免误判的方法。最后,LED灯用于模拟路灯,并根据以上述方式获得的交通量数据进行控制。实验结果表明,所提出的技术可以有效地用于夜间车辆检测和计数,因为它实现了94%的高平均校正率以及每秒44帧的计算时间。

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