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Feature-Aided Multitarget Tracking for Optical Belt Sorters

机译:用于光带分拣机的功能辅助多标磁带

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Industrial optical belt sorters are highly versatile in sorting bulk material or food, especially if mechanical properties are not sufficient for an adequate sorting quality. In previous works, we could show that the sorting quality can be enhanced by replacing the line scan camera, which is normally used, with an area scan camera. By performing multitarget tracking within the field of view, the precision of the utilized separation mechanism can be enhanced. The employed kinematics-based multitarget tracking crucially depends on the ability to associate detection hypotheses of the same particle across multiple frames. In this work, we propose a procedure to incorporate the visual similarity of the detected particles into the kinematics-based multitarget tracking that is generic and evaluates the visual similarity independent of the kinematics. For evaluating the visual similarity, we use the Kernelized Correlation Filter, the Large Margin Nearest Neighbor method and the Normalized Cross Correlation. Although no clear superiority for any of the visual similarity measures mentioned above could be determined, an improvement of all considered error metrics was attained.
机译:工业光带分拣机在分类散装材料或食物中具有高度通用的,特别是如果机械性能不足以充分的分选质量。在以前的作品中,我们可以通过用区域扫描相机更换通常使用的线扫描摄像头,表明可以提高排序质量。通过在视野中执行多靶案,可以提高利用分离机制的精度。所采用的基于的基于的基于的运动学的多标键盘跟踪致命地取决于将相同粒子的检测假设跨多个帧的检测的能力。在这项工作中,我们提出了一种过程将检测到的粒子的视觉相似性纳入基于运动学的多点跟踪,这是通用的,并根据运动学而评估视觉相似性。为了评估视觉相似性,我们使用内核相关滤波器,大边缘最近邻法和归一化交叉相关性。尽管可以确定上述任何视觉相似度措施的清晰优势,但达到了所有考虑的误差度量的改进。

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