基于优势集的多相机跟踪数据关联

A. Hamid, Surafel Melaku Lakew, M. Pelillo, A. Prati
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引用次数: 1

摘要

提出了一种解决多相机多目标跟踪中数据关联问题的新方法。主要的新颖之处在于首次使用相机内和相机间数据关联的优势集框架。由于优势集的性质,我们可以将数据关联视为所有摄像机的整个帧序列上获得的检测(人或其他目标)的全局聚类。为了处理目标的遮挡、分裂和合并,引入了一种有效的优势集的样本外扩展来执行不同相机之间的数据关联(相机间数据关联)。在PETS的09公共数据集上进行的实验显示,与目前的技术水平相比,在准确性(精度和召回率以及MOTA)方面表现良好。
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Using dominant sets for data association in multi-camera tracking
This paper presents a novel approach to solve data association in multi-camera multi-target object tracking. The main novelty is represented by the first known use of dominant set framework for intra-camera and inter-camera data association. Thanks to the properties of dominant sets, we can treat the data association as a global clustering of the detections (people or other targets) obtained over the whole sequence of frames from all the cameras. In order to handle occlusions, splitting and merging of targets, an efficient out-of-sample extension to dominant sets has been introduced to perform data association between different cameras (inter-camera data association). Experiments carried out on PETS '09 public dataset showed promising performance in terms of accuracy (precision and recall, as well as MOTA) when compared with the state of the art.
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