Person re-identification visualization tool for object tracking across non-overlapping cameras

Etienne Pot, Maiya Hori, Atsushi Shimada, H. Nagahara, R. Taniguchi
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Abstract

In this paper, we present a visualization tool for person re-identification when tracking objects across non-overlapping cameras. Tracking objects across non-overlapping cameras is challenging because the observations from different cameras are widely separated in both time and space. Hence, these systems need a large amount of labeled training data. Commonly, this training data is constructed manually at significant human cost. We support this process efficiently by visualizing the correspondences of objects across multiple cameras. Our tool facilitates the construction of a database for person re-identification with ease. Moreover, the accuracy of person re-identification can be increased using the generated database because the amount of training data is increased. In the experiments, we apply the proposed tool to real world situations to verify the validity of the proposed system.
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人员再识别可视化工具的目标跟踪跨非重叠的相机
在本文中,我们提出了一种可视化工具,用于跨非重叠摄像机跟踪对象时的人员重新识别。由于不同摄像机的观测结果在时间和空间上都有很大的分离,因此在不重叠的摄像机上跟踪目标是具有挑战性的。因此,这些系统需要大量的标记训练数据。通常,这种训练数据是人工构建的,耗费大量人力。我们通过可视化多个摄像机之间对象的对应关系来有效地支持这一过程。我们的工具方便了数据库的构建,方便了人员的再识别。此外,由于增加了训练数据量,使用生成的数据库可以提高人员再识别的准确性。在实验中,我们将所提出的工具应用于现实世界的情况,以验证所提出系统的有效性。
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