Learning Hybrid Relationships for Person Re-identification
Shuang Liu, Wenmin Huang, Zhong Zhang
摘要
Recently, the relationship among individual pedestrian images and the relationship among pairwise pedestrian images have become attractive for person re-identification (re-ID) as they effectively improve the ability of feature representation. In this paper, we propose a novel method named Hybrid Relationship Network (HRNet) to learn the two types of relationships in a unified framework that makes use of their own advantages. Specifically, for the relationship among individual pedestrian images, we take the features of pedestrian images as the nodes to construct a locally-connected graph, so as to improve the discriminative ability of nodes. Meanwhile, we propose the consistent node constraint to inject the identity information into the graph learning process and guide the information to propagate accurately. As for the relationship among pairwise pedestrian images, we treat the feature differences of pedestrian images as the nodes to construct a fully-connected graph so as to estimate robust similarity of nodes. Furthermore, we propose the inter-graph propagation to alleviate the information loss for the fully-connected graph. Extensive experiments on Market-1501, DukeMTMCreID, CUHK03 and MSMT17 demonstrate that the proposed HRNet outperforms the state-of-the-art methods.
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它引用的顶会 Paper5
- Auto-ReID: Searching for a Part-Aware ConvNet for Person Re-IdentificationRuijie Quan, Xuanyi Dong, Yu Wu, Linchao Zhu 等ICCV 2019 · 被引用 240 次
- Semantics-Aligned Representation Learning for Person Re-IdentificationXin Jin, Cuiling Lan, Wenjun Zeng, Guoqiang Wei 等AAAI 2020 · 被引用 157 次
- Relation Network for Person Re-IdentificationHyunjong Park, Bumsub HamAAAI 2020 · 被引用 143 次
- Online Joint Multi-Metric Adaptation From Frequent Sharing-Subset Mining for Person Re-IdentificationJiahuan Zhou, Bing Su, Ying WuCVPR 2020
- Relation-Aware Global Attention for Person Re-IdentificationZhizheng Zhang, Cuiling Lan, Wenjun Zeng, Xin Jin 等CVPR 2020
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