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Robust visual tracking using joint scale-spatial correlation filters

机译:使用联合比例尺-空间相关滤波器进行可靠的视觉跟踪

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Scale adaptation is crucial to object tracking as the visual size of the target changes continuously. Many existing tracking algorithms, however, simply ignore scale changes either for the consideration of tracking efficiency or the lack of principle ways to scale estimation. In this work, we present an efficient and effective scale adaptive tracking algorithm by proposing a correlation filter based tracker in the joint spatial and scale space. We find that the exhaustive template searching in this joint space can be well modeled by a block-circulant matrix. With the properties of the block-circulant matrices, we prove that the expensive template matching can be transformed to efficient dot product in frequency domain by fast Fourier Transform. Based on these findings, our new tracker significantly improves the robustness and adaptability of previous competitive spatial correlation trackers. On the latest single object tracking benchmark, our tracker advances the state-of-the-art tracking results with a very large margin.
机译:比例调整对于目标跟踪至关重要,因为目标的视觉尺寸会不断变化。但是,许多现有的跟踪算法只是出于跟踪效率的考虑或缺乏规模估算的基本方法而忽略了规模变化。在这项工作中,我们通过在联合空间和尺度空间中提出一种基于相关滤波器的跟踪器,提出了一种有效的尺度自适应跟踪算法。我们发现,在这个联合空间中的穷举模板搜索可以通过块循环矩阵很好地建模。利用块循环矩阵的性质,我们证明了可以通过快速傅立叶变换将昂贵的模板匹配在频域中转换为有效的点积。基于这些发现,我们的新型跟踪器大大提高了以前竞争性空间相关跟踪器的健壮性和适应性。在最新的单个对象跟踪基准上,我们的跟踪器以非常大的幅度提高了最新的跟踪结果。

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