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Robust visual tracking via occlusion detection based on staple algorithm

机译:通过基于订书钉算法的遮挡检测实现强大的视觉跟踪

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In this paper, we propose a novel algorithm to handle occlusions for robust visual object tracking. For a robust and adaptive tracking algorithm, it is critical to distinguish occlusions from target appearance variations. Occlusions are introduced in the 3-D scene to 2-D plane projection process and usually correspond to interactions between the target and the background. In our algorithm, we exploit temporal and spatial context information to identify the occurrence of occlusions. We implement the proposed occlusion detection scheme based on Staple algorithm [2], which is an efficient and accurate tracking algorithm. Besides the tracker to estimate the state of the target, we also investigate the background patches around the target with trackers to monitor their interaction with the target. If occlusions are detected, the current target model stops updating. Comprehensive experiments on benchmark OTB-2013 show that our strategy can detect occlusions correctly and therefore enable the proposed tracking algorithm robust to occlusions.
机译:在本文中,我们提出了一种新颖的算法来处理遮挡,以实现健壮的视觉对象跟踪。对于强大且自适应的跟踪算法,区分遮挡与目标外观变化至关重要。遮挡在3D场景中引入2D平面投影过程,通常对应于目标和背景之间的交互。在我们的算法中,我们利用时间和空间上下文信息来识别遮挡的发生。我们基于Staple算法[2]实现了所提出的遮挡检测方案,这是一种高效,准确的跟踪算法。除了跟踪器以估计目标的状态之外,我们还使用跟踪器调查目标周围的背景补丁,以监视它们与目标的交互。如果检测到遮挡,则当前目标模型停止更新。在基准OTB-2013上的综合实验表明,我们的策略可以正确检测遮挡,因此使所提出的跟踪算法对遮挡具有鲁棒性。

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