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Distributed person re-identification through network-wise rank fusion consensus

机译:分布式人通过网络 - 明智等级融合共识重新识别

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摘要

The problem of re-identify persons across single disjoint camera-pairs has received great attention from the community. Despite this, when the re-identification process has to be carried out on a wide camera network additional problems arise and deny the direct application of existing solutions. Thus, a different approach has to be considered. In particular, existing approaches have neglected the importance of the network topology (i.e., the configuration of the monitored area) in such a process. To try filling such a gap, we propose a distributed person re-identification framework which brings in the following contributions: (i) a weighted camera matching cost that measures the re-identification performance between cameras in the network; (ii) a derivation of the distance vector algorithm that yields to network topology learning and allows us to prioritize and limit the cameras inquired for the re-identification; (iii) a network consensus weighted rank fusion solution that allows us to perform the re-identification in a robust fashion. Results on four benchmark datasets show that the proposed approach brings to significant network-wise re-identification improvements. (C) 2019 Elsevier B.V. All rights reserved.
机译:重新识别单一不相机相机对的人的问题受到了社区的极大关注。尽管如此,当重新识别过程必须在广泛的相机网络上进行额外问题而否认现有解决方案的直接应用。因此,必须考虑不同的方法。特别地,现有方法忽略了网络拓扑(即监视区域的配置)在这种过程中的重要性。为了尝试填补这种差距,我们提出了一个分布式人员重新识别框架,它带来了以下贡献:(i)加权相机匹配成本,可测量网络中相机之间的重新识别性能; (ii)距离载体算法的推导率产生网络拓扑学习,并允许我们优先考虑并限制查询重新识别的摄像机; (iii)网络共识加权等级融合解决方案,其允许我们以强大的方式执行重新识别。结果四个基准数据集显示,该方法带来了重大的网络方面重新识别改进。 (c)2019 Elsevier B.v.保留所有权利。

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