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Feature-Based Stereo Vision Using Smart Cameras for Traffic Surveillance

机译:使用智能摄像头进行交通监控的基于功能的立体视觉

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This paper presents a stereo-based system for measuring traffic on motorways. To achieve real-time performance, the system exploits a decentralized architecture composed of a pair of smart cameras fixed over the road and connected via network to an embedded industrial PC on the side of the road. Different features (Harris corners and edges) are detected on the two images and matched together with local matching algorithm. The resulting 3D points cloud is processed by maximum spanning tree clustering algorithm to group the points into vehicle objects. Bounding boxes are denned for each detected object, giving an approximation of the vehicles 3D sizes. The system presented here has been validated manually and gives over 90% of good detection accuracy at 20-25 frames/s.
机译:本文提出了一种基于立体声的系统,用于测量高速公路的交通流量。为了实现实时性能,该系统采用分散式架构,该架构由固定在道路上并通过网络连接到道路旁的嵌入式工业PC的一对智能相机组成。在两个图像上检测到不同的特征(Harris角和边缘),并使用局部匹配算法进行匹配。通过最大生成树聚类算法处理生成的3D点云,以将点分组为车辆对象。为每个检测到的对象定义边界框,从而给出车辆3D尺寸的近似值。这里介绍的系统已经过手动验证,在20-25帧/秒的速度下可提供90%的良好检测精度。

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