首页> 外文会议>Conference on Optical Materials and Biomaterials in Security and Defence Systems Technology;Conference on Optics and photonics for counterterrorism, crime fighting and defence >Automatic inference of geometric camera parameters and inter-camera topology in uncalibrated disjoint surveillance cameras
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Automatic inference of geometric camera parameters and inter-camera topology in uncalibrated disjoint surveillance cameras

机译:在未校准的不相交监控摄像机中自动推断几何摄像机参数和摄像机间拓扑

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Person tracking across non-overlapping cameras and other types of video analytics benefit from spatial calibration information that allows an estimation of the distance between cameras and a relation between pixel coordinates and world coordinates within a camera. In a large environment with many cameras, or for frequent ad-hoc deployments of cameras, the cost of this calibration is high. This creates a barrier for the use of video analytics. Automating the calibration allows for a short configuration time, and the use of video analytics in a wider range of scenarios, including ad-hoc crisis situations and large scale surveillance systems. We show an autocalibration method entirely based on pedestrian detections in surveillance video in multiple non-overlapping cameras. In this paper, we show the two main components of automatic calibration. The first shows the intra-camera geometry estimation that leads to an estimate of the tilt angle, focal length and camera height, which is important for the conversion from pixels to meters and vice versa. The second component shows the inter-camera topology inference that leads to an estimate of the distance between cameras, which is important for spatio-temporal analysis of multi-camera tracking. This paper describes each of these methods and provides results on realistic video data.
机译:跨非重叠摄像机和其他类型视频分析的人员跟踪得益于空间校准信息,该信息可以估算摄像机之间的距离以及摄像机内像素坐标与世界坐标之间的关系。在具有许多摄像机的大型环境中,或者对于频繁的临时部署摄像机,此校准的成本很高。这为视频分析的使用创造了障碍。自动校准可以缩短配置时间,并可以在更广泛的场景中使用视频分析,包括临时危机情况和大规模监视系统。我们展示了一种完全基于行人检测的自动校准方法,该方法在多个不重叠的摄像机的监控视频中进行。在本文中,我们展示了自动校准的两个主要组成部分。第一个显示了摄像机内部的几何估计,该估计导致对倾斜角度,焦距和摄像机高度的估计,这对于从像素到米的转换以及反之亦然很重要。第二个组件显示了摄像机间拓扑推断,该推断导致对摄像机之间距离的估计,这对于多摄像机跟踪的时空分析非常重要。本文介绍了每种方法,并提供了有关实际视频数据的结果。

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