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An Adaptive Vehicle Detection Algorithm Based on Magnetic Sensors in Intelligent Transportation Systems

机译:智能交通系统中基于磁传感器的自适应车辆检测算法

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摘要

Urban traffic congestion has become a very common phenomenon. In order to solve this problem, it is necessary to obtain the traffic data effectively. In this paper, we propose an adaptive vehicle detection algorithm based on magnetic sensors in intelligent transportation systems. The magnetic sensors used to detect the vehicles are deployed on the sides of roads to reduce the interference of sensors to the traffic other than the traditional methods in which sensors are often deployed on the traffic roads, and hence interfere with the normal traffic. In order to reduce the interference and improve the detecting accuracy rate, some kinds of effective algorithms to detect small signals are required. First of all, the deviation factor of the geomagnetic field signal is constructed to extract characteristics of the magnetic signals. Based on the definition, the y-axis of the magnetic signal is obtained and is proven to be the most obvious amplitude of variation. Based on this discovery, an adaptive vehicle detection algorithm is proposed. The proposed algorithm is tested on single lane and real and complicated urban road environments. Experimental results show that the proposed algorithm can achieve high detection accuracy.
机译:城市交通拥堵已成为非常普遍的现象。为了解决这个问题,有必要有效地获得交通数据。本文提出了一种基于磁传感器的智能交通系统自适应车辆检测算法。用于检测车辆的磁性传感器被部署在道路的两侧,以减少传感器对交通的干扰,而传统的方法通常是在交通道路上部署传感器,从而干扰正常的交通。为了减少干扰并提高检测准确率,需要一些有效的算法来检测小信号。首先,构造地磁场信号的偏差因子以提取磁信号的特性。根据定义,获得了磁信号的y轴,并被证明是最明显的变化幅度。基于这一发现,提出了一种自适应车辆检测算法。所提出的算法在单车道以及真实和复杂的城市道路环境下进行了测试。实验结果表明,该算法能达到较高的检测精度。

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