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Video Image Vehicle Detection System for Signaled Traffic Intersection

机译:用于信号交通交叉口的视频图像车辆检测系统

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In modern intelligent transportation systems, the video image vehicle detection system (VIVDS) is gradually becoming one of the popular methods at signalized traffic intersection due to its convenient installation and rich information content provided. However, in the current VIVDS, the camera usually is installed at the roadside poles or traffic light poles, which not only requires more than one camera to cover the entire intersection, but also results in serious vehicle occlusions and adverse affects on the performance of the vehicle detection and tracking. Meanwhile, it is noted that the detection rate of the black, gray and dark color vehicles (such as red, blue, and green vehicles) are poor or incomplete detection by using the traditional background subtraction method in the RGB color model. To tackle these problems, this paper presents a novel VIVDS with the new camera installation, which only uses a single camera to cover the panorama view of the interested intersection. Furthermore, a robust vehicle detection algorithm with multi-information fusion has been developed to resolve problems of detecting incompletion, which plays a key role in enhancing the vehicle detection rate in the proposed VIVDS for urban traffic surveillance. The proposed system has been tested on a traffic image sequences recorded at typical urban intersections. The experimental results show that the system offers the flexibility to detect the different color vehicles, the robustness to noise and the efficiency of computation.
机译:在现代智能运输系统中,视频图像车辆检测系统(VIVDS)由于其方便的安装和提供的丰富信息内容,逐渐成为信号交通交叉口的流行方法之一。但是,在目前的VIVDS中,相机通常安装在路边杆或交通灯杆上,这不仅需要多个相机来覆盖整个交叉口,而且还导致严重的车辆闭塞和不利影响对性能的影响车辆检测和跟踪。同时,注意到,通过在RGB颜色模型中使用传统的背景减法方法,对黑色,灰色和深色车辆(例如红色,蓝色和绿色车辆)的检测率差或不完全检测。为了解决这些问题,本文提出了一种新型VIVDS,具有新的相机安装,该专用摄像机安装,它只使用单个摄像头来覆盖感兴趣的交叉口的全景视图。此外,已经开发了一种具有多信息融合的强大车辆检测算法来解决检测不完整的问题,这在提高建议的VIVDS中的车辆检测率方面发挥着关键作用,以便城市交通监测。所提出的系统已经在典型城市交叉路口记录的交通图像序列上进行了测试。实验结果表明,该系统提供了检测不同彩色车辆的灵活性,噪音的稳健性和计算效率。

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