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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Part-based correlation filter tracking by exploiting the similarity and contribution of reliable parts
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Part-based correlation filter tracking by exploiting the similarity and contribution of reliable parts

机译:基于部分的相关滤波器跟踪通过利用可靠部件的相似性和贡献

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摘要

Challenges like occlusion, background clutter, illumination and scale variation make visual object tracking a tough problem in computer vision. Part-based tracking methods have been widely used to solve the partial occlusion issue, different from various holistic appearance model based trackers, it combines the local appearances of the target to build a robust global appearance. In this paper, we propose a novel object tracking method based on multi-part scheme and Bayesian framework, using the Kernelized Correlation Filter (KCF) as the base tracker. Additionally, two robust reliability metrics are proposed: the first one utilizes the similarity between the corresponding parts in consecutive frames to measure the reliability; while the second one measures the contribution that each part made for the global target object. Besides, adaptive updating strategy and scale estimation which employ the relationships among parts are proposed to deal with appearance modeling. Extensive experiments have been conducted on latest benchmark to demonstrate that our method outperforms state-of-the-art trackers.
机译:遮挡等挑战,背景杂波,照明和比例变化使视觉对象跟踪计算机视觉中的棘手问题。基于零件的跟踪方法已被广泛用于解决部分闭塞问题,与各种整体外观模型的跟踪器不同,它结合了目标的局部外观来构建强大的全球外观。在本文中,我们提出了一种基于多件式方案和贝叶斯框架的新型对象跟踪方法,使用内核相关滤波器(KCF)作为基础跟踪器。另外,提出了两个稳健的可靠性度量:第一个是在连续帧中使用相应部件之间的相似性来测量可靠性;虽然第二个措施衡量为全球目标对象所做的每个部分的贡献。此外,提出了采用零件之间关系的自适应更新策略和规模估计来处理外观建模。在最新的基准测试中进行了广泛的实验,以证明我们的方法优于最先进的跟踪器。

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