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Fusion of Multiple Tracking Algorithms for Robust People Tracking

机译:用于强大的人追踪多个跟踪算法的融合

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This paper shows how the output of a number of detection and tracking algorithms can be fused to achieve robust tracking of people in an indoor environment. The new tracking system contains three co-operating parts: i) an Active Shape Tracker using a PCA-generated model of pedestrian outline shapes, ii) a Region Tracker, featuring region splitting and merging for multiple hypothesis matching, and iii) a Head Detector to aid in the initialisation of tracks. Data from the three parts are fused together to select the best tracking hypotheses. The new method is validated using sequences from surveillance cameras in a underground station. It is demonstrated that robust realtime tracking of people can be achieved with the new tracking system using standard PC hardware.
机译:本文展示了如何融合许多检测和跟踪算法的输出,以实现室内环境中的人们的强大跟踪。新的跟踪系统包含三个共操作部件:i)使用PCA生成的行人轮廓形状模型,ii)一个有源形状跟踪器,ii)区域跟踪器,具有区域分割和合并多个假设匹配的区域追踪器,以及III)头检测器帮助追踪轨道的初始化。来自三个部分的数据融合在一起以选择最佳跟踪假设。使用来自地下站的监控摄像机的序列验证了新方法。据证明,使用标准PC硬件的新型跟踪系统,可以实现人们的强大实时跟踪。

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