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Detection Based Low Frame Rate Human Tracking

机译:基于检测的低帧率人体跟踪

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Tracking by association of low frame rate detection responses is not trivial, as motion is less continuous and hence ambiguous. The problem becomes more challenging when occlusion occurs. To solve this problem, we firstly propose a robust data association method that explicitly differentiates ambiguous tracklets that are likely to introduce incorrect linking from other tracklets, and deal with them effectively. Secondly, we solve the long-time occlusion problem by detecting inter-track relationship and performing track split and merge according to appearance similarity and occlusion order. Experiment on a challenging human surveillance dataset shows the effectiveness of the proposed method.
机译:由于运动不连续,因此模棱两可,因此通过低帧频检测响应的关联进行跟踪并非易事。当发生咬合时,该问题变得更具挑战性。为了解决这个问题,我们首先提出了一种鲁棒的数据关联方法,该方法可以明确区分可能会引入错误链接的歧义小轨迹与其他小轨迹,并对其进行有效处理。其次,我们通过检测轨道之间的关系并根据外观相似度和遮挡顺序执行轨道拆分和合并,解决了长时间的遮挡问题。在具有挑战性的人类监视数据集上进行的实验证明了该方法的有效性。

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