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Motion tracking based on area and level set weighted centroid shifting

机译:基于面积和水平集加权质心偏移的运动跟踪

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摘要

In this study, the authors propose a stable colour-based tracking algorithm based on a new representation of the target location: the area weighted mean of the centroids corresponding to each colour bin of the target. The target location is well discriminated, since the centroids contain spatial information on the distribution of the colours and are rather insensitive to the loss of pixels and change in the number of pixels. The area weighting takes care that the major colours are treated with more importance than the minor colours. Due to these properties, it is possible to track the target in difficult conditions such as low-frame-rate environment, severe partial occlusion and partial colour change environment. Furthermore, the target localisation can be achieved in a one-step computation, which makes the algorithm fast. The authors compare the stability of the proposed tracking scheme with the original mean shift based tracker, both mathematically and experimentally. They also propose a background feature elimination algorithm, which is based on the level set based bimodal segmentation. The level set based bimodal segmentation segments out the region with dominant background feature and thus increases the robustness of the scheme.
机译:在这项研究中,作者提出了一种基于颜色的稳定跟踪算法,该算法基于目标位置的新表示:对应于目标每个颜色仓的质心的面积加权平均值。由于质心包含有关颜色分布的空间信息,并且对像素的丢失和像素数量的变化不敏感,因此可以很好地区分目标位置。区域权重应确保对主要颜色的处理比对次要颜色的处理更为重要。由于这些特性,可以在困难条件下跟踪目标,例如低帧频环境,严重的部分遮挡和部分颜色变化的环境。此外,目标定位可以通过一步计算来实现,从而使算法快速。作者在数学和实验上比较了所提出的跟踪方案与原始的基于均值漂移的跟踪器的稳定性。他们还提出了一种背景特征消除算法,该算法基于基于水平集的双峰分割。基于水平集的双峰分割将具有主导背景特征的区域分割出来,从而提高了该方案的鲁棒性。

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  • 来源
    《Computer Vision, IET》 |2010年第2期|共12页
  • 作者

    Lee S.-H.; Kang M.G.;

  • 作者单位

    Department of Multimedia Engineering, Dongseo University, San 69-1, Churye-2-dong, Sasang-Gu, 617-716, Busan, Korea;

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  • 正文语种 eng
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