Unsupervised Person Re-Identification via Softened Similarity Learning
Yutian Lin, Lingxi Xie, Yu Wu, Chenggang Yan, Qi Tian
摘要
Person re-identification (re-ID) is an important topic in computer vision. This paper studies the unsupervised setting of re-ID, which does not require any labeled information and thus is freely deployed to new scenarios. There are very few studies under this setting, and one of the best approach till now used iterative clustering and classification, so that unlabeled images are clustered into pseudo classes for a classifier to get trained, and the updated features are used for clustering and so on. This approach suffers two problems, namely, the difficulty of determining the number of clusters, and the hard quantization loss in clustering. In this paper, we follow the iterative training mechanism but discard clustering, since it incurs loss from hard quantization, yet its only product, image-level similarity, can be easily replaced by pairwise computation and a softened classification task. With these improvements, our approach becomes more elegant and is more robust to hyperparameter changes. Experiments on two image-based and video-based datasets demonstrate state-of-the-art performance under the unsupervised re-ID setting.
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引用它的顶会 Paper25
- Self-paced Contrastive Learning with Hybrid Memory for Domain Adaptive Object Re-IDYixiao Ge, Feng Zhu, Dapeng Chen, Rui Zhao 等NeurIPS 2020 · 被引用 688 次
- Part-based Pseudo Label Refinement for Unsupervised Person Re-identificationYoonki Cho, Woo Jae Kim, Seunghoon Hong, Sung-Eui YoonCVPR 2022 · 被引用 271 次
- ICE: Inter-instance Contrastive Encoding for Unsupervised Person Re-identificationHao Chen, Benoit Lagadec, François BrémondICCV 2021 · 被引用 258 次
- Camera-Aware Proxies for Unsupervised Person Re-IdentificationMenglin Wang, Baisheng Lai, Jianqiang Huang, Xiaojin Gong 等AAAI 2021 · 被引用 247 次
- IDM: An Intermediate Domain Module for Domain Adaptive Person Re-IDYongxing Dai, Jun Liu, Yifan Sun, Zekun Tong 等ICCV 2021 · 被引用 145 次
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