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首页> 外文期刊>Intelligent Transport Systems, IET >Robust detection system of illegal lane changes based on tracking of feature points
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Robust detection system of illegal lane changes based on tracking of feature points

机译:基于特征点跟踪的非法车道变更鲁棒检测系统

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摘要

This study proposes a robust real-time system to detect vehicles that change lanes illegally based on tracking feature points. The algorithm in the system does not need to switch depending on the illumination conditions, such as day and night. The camera is assumed to be heading in the opposite direction to the traffic flow. Before starting, the system manager should initially designate several regions that are utilised for detection. Then, the proposed algorithm consists of three stages, such as extracting feature points of corners, tracking the feature points attached to vehicles and detecting a vehicle that violates legal lane changes. For the feature extraction stage, the authors used a robust and fast algorithm that can provide stable corners without distinguishing between day and night or weather conditions. Salient points are selected among the corner points for registration and tracking. Normalised cross-correlation is used to track the registered feature points. Finally, illegal change-of-lane is determined by the information obtained from the tracked corners without grouping them for segmentation. The proposed system showed excellent performance in terms of the accuracy and the computation speed.
机译:这项研究提出了一个强大的实时系统,可以基于跟踪特征点来检测非法更改车道的车辆。系统中的算法不需要根据照明条件(例如白天和黑夜)进行切换。假定摄像机朝与交通相反的方向行驶。在开始之前,系统管理员应首先指定几个用于检测的区域。然后,所提出的算法包括三个阶段,例如,提取弯道的特征点,跟踪附着在车辆上的特征点以及检测违反合法车道变化的车辆。在特征提取阶段,作者使用了一种强大而快速的算法,该算法可以提供稳定的拐角而无需区分白天和黑夜或天气情况。从角点中选择凸点进行注册和跟踪。归一化互相关用于跟踪注册的特征点。最后,非法的车道改变是由从跟踪的角落获得的信息确定的,而没有将它们分组进行分割。提出的系统在准确性和计算速度方面表现出优异的性能。

著录项

  • 来源
    《Intelligent Transport Systems, IET》 |2013年第1期|20-27|共8页
  • 作者

    Lee H.; Jeong S.; Lee J.;

  • 作者单位

    Department of Computer Science and Engineering, Chonbuk National University, Computer Engineering, Korea|c|;

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  • 原文格式 PDF
  • 正文语种 eng
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