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Rotation-Aware Discriminative Scale Space Tracking

机译:旋转感知判别尺度空间跟踪

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Although discriminative correlation filters (DCF) based methods have achieved desirable performance in visual tracking, most existing methods still fail to cope with significant target rotations in challenging scenarios. This paper proposes a rotation-aware DCF-based tracking method that efficiently estimates the target rotation and exploits the estimated rotation in translation and scale models. The proposed method reformulates the discriminative scale space tracker (DSST) to estimate target location and rotation, simultaneously. Then, the estimated rotation integrates into the scale estimation process, effectively. While the proposed method can estimate all target rotations, it uses only three target models in each frame to have desirable tracking speed. Experimental results demonstrate that the proposed method outperforms the average precision and success rate of the DSST up to 3.9% and 5.3% on 21 relevant video sequences, respectively.
机译:尽管基于判别相关过滤器(DCF)的方法在视觉跟踪中已经达到了理想的性能,但是大多数现有方法仍无法应对具有挑战性的场景中的目标旋转。本文提出了一种基于旋转感知的基于DCF的跟踪方法,该方法可以有效地估计目标旋转并在平移和比例模型中利用估计的旋转。所提出的方法重新构造了判别尺度空间跟踪器(DSST),以同时估计目标位置和旋转。然后,将估计的旋转有效地集成到规模估计过程中。虽然所提出的方法可以估计所有目标旋转,但它在每个帧中仅使用三个目标模型以具有理想的跟踪速度。实验结果表明,该方法在21个相关视频序列上的性能均优于DSST的平均精度和成功率,分别达到3.9%和5.3%。

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