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Visual object tracking challenges revisited: VOT vs. OTB

机译:视觉对象跟踪挑战再谈:VOT与OTB

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摘要

Numerous benchmark datasets and evaluation toolkits have been designed to facilitate visual object tracking evaluation. However, it is not clear which evaluation protocols are preferred for different tracking objectives. Even worse, different evaluation protocols sometimes yield contradictory conclusions, further hampering reliable evaluation. Therefore, we 1) introduce the new concept of mirror tracking to measure the robustness of a tracker and identify its over-fitting scenarios; 2) measure the robustness of the evaluation ranks produced by different evaluation protocols; and 3) report a detailed analysis of milestone tracking challenges, indicating their application scenarios. Our experiments are based on two state-of-the-art challenges, namely, OTB and VOT, using the same trackers and datasets. Based on the experiments, we conclude that 1) the proposed mirror tracking metrics can identify the over-fitting scenarios of a tracker, 2) the ranks produced by OTB are more robust than those produced by VOT, and 3) the joint ranks produced by OTB and VOT can be used to measure failure recovery.
机译:已经设计了许多基准数据集和评估工具包来促进视觉对象跟踪评估。但是,尚不清楚哪种评估协议更适合于不同的跟踪目标。更糟糕的是,不同的评估方案有时会得出矛盾的结论,从而进一步阻碍了可靠的评估。因此,我们(1)引入了镜像跟踪的新概念,以测量跟踪器的鲁棒性并确定其过度拟合的情况; 2)测量由不同评估协议产生的评估等级的鲁棒性; 3)报告里程碑跟踪挑战的详细分析,并指出其应用场景。我们的实验基于两个最先进的挑战,即使用相同的跟踪器和数据集的OTB和VOT。根据实验,我们得出以下结论:1)提出的镜像跟踪指标可以识别跟踪器的过拟合情况; 2)OTB产生的等级比VOT产生的等级更稳健,以及3)由TOT产生的联合等级OTB和VOT可用于衡量故障恢复。

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