基于轨迹行为分析的单摄像机标定

N. Anjum, A. Cavallaro
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引用次数: 29

摘要

在监控视频中,图像平面上的透视变形给物体行为分析带来困难。在本文中,我们改进了基于轨迹的场景分析结果,使用单摄像机校准进行视角校正。首先,从单个摄像机拍摄的透视图像估计地平面视图。其次,将无监督模糊聚类应用于变换后的轨迹,对相似行为进行分组并分离异常值。我们在标准数据集的真实室外监控场景中评估了所提出的方法,并表明视角校正提高了轨迹聚类结果的准确性。
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Single camera calibration for trajectory-based behavior analysis
Perspective deformations on the image plane make the analysis of object behaviors difficult in surveillance video. In this paper, we improve the results of trajectory-based scene analysis by using single camera calibration for perspective rectification. First, the ground-plane view is estimated from perspective images captured from a single camera. Next, unsupervised fuzzy clustering is applied on the transformed trajectories to group similar behaviors and to isolate outliers. We evaluate the proposed approach on real outdoor surveillance scenarios with standard datasets and show that perspective rectification improves the accuracy of the trajectory clustering results.
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