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Combined segmentation, reconstruction, and tracking of multiple targets in multi-view video sequences

机译:多视点视频序列中的多个目标的组合分割,重建和跟踪

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摘要

Tracking of multiple targets in a crowded environment using tracking by detection algorithms has been investigated thoroughly. Although these techniques are quite successful, they suffer from the loss of much detailed information about targets in detection boxes, which is highly desirable in many applications like activity recognition. To address this problem, we propose an approach that tracks superpixels instead of detection boxes in multi-view video sequences. Specifically, we first extract superpixels from detection boxes and then associate them within each detection box, over several views and time steps that lead to a combined segmentation, reconstruction, and tracking of superpixels. We construct a flow graph and incorporate both visual and geometric cues in a global optimization framework to minimize its cost. Hence, we simultaneously achieve segmentation, reconstruction and tracking of targets in video. Experimental results confirm that the proposed approach outperforms state-of-the-art techniques for tracking while achieving comparable results in segmentation.
机译:使用检测算法跟踪在拥挤的环境中对多个目标进行跟踪已被彻底研究。尽管这些技术非常成功,但它们却丢失了有关检测盒中目标的详细信息,这在诸如活动识别之类的许多应用中非常需要。为了解决这个问题,我们提出了一种在多视图视频序列中跟踪超像素而不是检测框的方法。具体来说,我们首先从检测盒中提取超像素,然后在几个视图和时间步骤上将它们与每个检测盒相关联,从而导致对超像素的分割,重建和跟踪。我们构建了流程图,并将视觉和几何提示都纳入了全局优化框架,以最大程度地降低其成本。因此,我们同时实现了视频中目标的分割,重构和跟踪。实验结果证实,该方法优于最新的跟踪技术,同时在分割方面取得了可比的结果。

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