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Fusion of appearance and motion-based sparse representations for multi-shot person re-identification

机译:基于外观和基于运动的稀疏表示的融合,用于多次镜头人的重新识别

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We present in this paper a multi-shot human re-identification system from video sequences based on interest points (IPs) matching. Our contribution is to take advantage of the complementary of person's appearance and style of its movement that leads to a more robust description with respect to various complexity factors. The proposed contributions include person's description and features matching. For person's description, we propose to exploit a fusion strategy of two complementary features provided by appearance and motion description. We describe motion using spatiotemporal IPs, and use spatial IPs for describing the appearance. For feature matching, we use Sparse Representation (SR) as a local matching method between IPs. The fusion strategy is based on the weighted sum of matched IPs votes and then applying the rule of majority vote. This approach is evaluated on a large public dataset, PR1D-2011. The experimental results show that our approach clearly outperforms current state-of-the-art. (C) 2017 Elsevier B.V. All rights reserved.
机译:我们在本文中提出了一种基于兴趣点(IP)匹配的视频序列的多镜头人类重新识别系统。我们的贡献是利用人的外表和运动方式的互补性,从而对各种复杂性因素进行更详尽的描述。提议的贡献包括人的描述和特征匹配。对于人的描述,我们建议利用外观和运动描述提供的两个互补特征的融合策略。我们使用时空IP来描述运动,并使用空间IP来描述外观。对于特征匹配,我们使用稀疏表示(SR)作为IP之间的本地匹配方法。融合策略基于匹配IP投票的加权总和,然后应用多数投票规则。在大型公共数据集PR1D-2011上评估了此方法。实验结果表明,我们的方法明显优于当前的最新技术。 (C)2017 Elsevier B.V.保留所有权利。

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