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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Dynamic imposter based online instance matching for person search
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Dynamic imposter based online instance matching for person search

机译:基于动态冒名顶替者的在线实例匹配人搜索

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摘要

Person search aims to locate the target person matching a given query from a list of unconstrained whole images. It is a challenging task due to the unavailable bounding boxes of pedestrians, limited samples for each labeled identity and large amount of unlabeled persons in existing datasets. To address these issues, we propose a novel end-to-end learning framework for person search. The proposed framework settles pedestrian detection and person re-identification concurrently. To achieve the goal of co-learning and utilize the information of unlabeled persons, a novel yet extremely efficient Dynamic Imposter based Online Instance Matching (DI-OIM) loss is formulated. The DI-OIM loss is inspired by the observation that pedestrians appearing in the same image obviously have different identities. Thus we assign the unlabeled persons with dynamic pseudo-labels. The pseudo-labeled persons along with the labeled persons can be used to learn powerful feature representations. Experiments on CUHK-SYSU and PRW datasets demonstrate that our method outperforms other state-of-the-art algorithms. Moreover, it is superior and efficient in terms of memory capacity comparing with existing methods. (C) 2019 Elsevier Ltd. All rights reserved.
机译:人员搜索旨在从未定义的整个图像列表找到匹配给定查询的目标人员。由于行人不可用,每个标记的身份的限制样本以及现有数据集中的大量未标记人员,这是一个具有挑战性的任务。为解决这些问题,我们为人员搜索提出了一个新的端到端学习框架。拟议的框架同时巩固了行人检测和人员重新识别。为实现共同学习和利用未标记人员信息的目标,制定了一种新的但极其高效的动态冒名体的在线实例(Di-OIM)损失。 Di-OIM损失受到观察到同一图像中出现的行人显然具有不同的身份。因此,我们将未标记的人分配有动态伪标签。伪标记的人员以及标签人员可以用于学习强大的特征表示。 Cuhk-Sysu和PRW数据集的实验表明,我们的方法优于其他最先进的算法。此外,就与现有方法进行比较,它在存储器容量方面是优异的。 (c)2019年elestvier有限公司保留所有权利。

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