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3D pedestrian tracking based on overhead cameras

机译:基于顶上的相机的3d行人跟踪

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This paper proposes a method to track pedestrians in crowded scenes based on the detection of the 3D head position of a person using two overhead cameras. A possible head area in one frame acquired from one of the overhead cameras is determined by evaluating a head area existence probability based on the integral polar mapped image, where a foreground pixel is assigned a probability to belong to the head area. A segment passing through the head top is estimated for each clustered head area. The disparities along each segment are calculated using the synchronized frame from the other overhead camera. The center of the points with the largest disparity on the segment is determined as the head point and its 3D position is computed using triangulation. It is then tracked using common assumptions on motion direction and velocity. This is efficiently done notwithstanding the fact that several segments may exist in a single foreground blob with each segment corresponding to a different person. The approach is tested using a publicly available visual surveillance simulation test bed. The experiments show that the 3D tracking errors are around 5 cm. The method allows for the capture of high quality close-up facial images.
机译:本文提出了跟踪基于该检测使用两个摄像头的开销一个人的三维头部位置的拥挤场面行人的方法。一种可能的头部区域中从塔顶相机之一获取的一个帧是通过评估基于积分极性映射图像,其中,前景像素被分配一个概率属于头部区域上的头部区域存在概率来确定。穿过头顶部甲段估计为每个群集头区域。沿着每个段的差异是使用从其它开销相机同步帧来计算。与该段中的最大视差的点的中心被确定为头部点和其三维位置使用三角测量来计算。然后,它使用于运动方向和速度共同假设跟踪。这有效地即使该多个区段可在单个前景团块存在与对应于一个不同的人的每个段的事实完成的。该方法是使用公开的视频监控模拟试验台测试。实验结果表明,在3D跟踪误差是5厘米左右。该方法允许高品质特写面部图像的拍摄。

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