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Single and Multiple View Detection, Tracking and Video Analysis in Crowded Environments

机译:拥挤环境中的单视图和多视图检测,跟踪和视频分析

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In this paper, we present our detection, tracking and event recognition methods and the results for PETS 2012. First, ROIs (Regions of Interest) based on geometric constraints are utilized in single view detection to eliminate the negative influence of clutter environment. Then, an optimized observation model is applied to address the ID switching or tracking drifting problem in single view tracking. Third, we introduce the multi-view Bayesian network (MBN) to reduce the "phantom" phenomena which frequently happen in general multi-view detection tasks. At last, a motion-based event recognition method is proposed to handle the event recognition task. Experimental results on the PETS 2012 dataset indicate that our methods are very promising.
机译:在本文中,我们介绍了PETS 2012的检测,跟踪和事件识别方法以及结果。首先,将基于几何约束的ROI(感兴趣区域)用于单视图检测中,以消除混乱环境的负面影响。然后,将优化的观察模型应用于单视图跟踪中的ID切换或跟踪漂移问题。第三,我们引入了多视图贝叶斯网络(MBN),以减少通常的多视图检测任务中经常发生的“幻像”现象。最后,提出了一种基于运动的事件识别方法来处理事件识别任务。 PETS 2012数据集上的实验结果表明,我们的方法非常有前途。

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