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Person Re-Identification under the Problem of Path Selection

机译:路径选择问题下的人员重新识别

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In this paper, a novel person re-identification method is introduced under the problem of path selection. Unlike other supervised person re-identification algorithms, our method can identify persons in the video without artificial markers. Our method divides each of the image sequences into several slices and selects the most distinguished ones, which can improve the performance. More crucially, this model is unsupervised and readily scalable to real-world large scale ReID settings, and more suitable to previous path selection, i.e., no need of exhaustively collecting large numbers of cross-view pairwise labels for each camera pair, as required by most existing ReID models, which need supervised training. Experimental results show that our method can outperform other methods and achieve excellent results.
机译:本文在路径选择问题的基础上,提出了一种新颖的人员重新识别方法。与其他受监管人员重新识别算法不同,我们的方法无需人工标记即可识别视频中的人员。我们的方法将每个图像序列分为几个切片,然后选择最杰出的切片,从而可以提高性能。更重要的是,该模型不受监督,可轻松扩展到现实世界中的大规模ReID设置,并且更适合于先前的路径选择,即,无需按照摄像机的要求为每个摄像机对详尽收集成对的成对视图标签。现有的大多数ReID模型,需要进行有监督的培训。实验结果表明,我们的方法可以胜过其他方法,并取得了优异的效果。

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