Group-aware Label Transfer for Domain Adaptive Person Re-identification
Kecheng Zheng, Wu Liu, Lingxiao He, Tao Mei, Jiebo Luo, Zheng-Jun Zha
摘要
Unsupervised Domain Adaptive (UDA) person reidentification (ReID) aims at adapting the model trained on a labeled source-domain dataset to a target-domain dataset without any further annotations. Most successful UDA-ReID approaches combine clustering-based pseudo-label prediction with representation learning and perform the two steps in an alternating fashion. However, offline interaction between these two steps may allow noisy pseudo labels to substantially hinder the capability of the model. In this paper, we propose a Group-aware Label Transfer (GLT) algorithm, which enables the online interaction and mutual promotion of pseudo-label prediction and representation learning. Specifically, a label transfer algorithm simultaneously uses pseudo labels to train the data while refining the pseudo labels as an online clustering algorithm. It treats the online label refinery problem as an optimal transport problem, which explores the minimum cost for assigning M samples to N pseudo labels. More importantly, we introduce a group-aware strategy to assign implicit attribute group IDs to samples. The combination of the online label refining algorithm and the group-aware strategy can better correct the noisy pseudo label in an online fashion and narrow down the search space of the target identity. The effectiveness of the proposed GLT is demonstrated by the experimental results (Rank-1 accuracy) for Market1501→DukeMTMC (82.0%) and DukeMTMC→Market1501 (92.2%), remarkably closing the gap between unsupervised and supervised performance on person re-identification. 1
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引用它的顶会 Paper25
- 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
- Exploring Sequence Feature Alignment for Domain Adaptive Detection TransformersWen Wang, Yang Cao, Jing Zhang, Fengxiang He 等ACM MM 2021 · 被引用 107 次
- Pose-Guided Feature Learning with Knowledge Distillation for Occluded Person Re-IdentificationKecheng Zheng, Cuiling Lan, Wenjun Zeng, Jiawei Liu 等ACM MM 2021 · 被引用 81 次
- Towards Discriminative Representation Learning for Unsupervised Person Re-identificationTakashi Isobe, Dong Li, Lu Tian, Weihua Chen 等ICCV 2021 · 被引用 76 次
- MSO: Multi-Feature Space Joint Optimization Network for RGB-Infrared Person Re-IdentificationYajun Gao, Tengfei Liang, Yi Jin, Xiaoyan Gu 等ACM MM 2021 · 被引用 75 次
它引用的顶会 Paper15
- Unsupervised Learning of Visual Features by Contrasting Cluster AssignmentsMathilde Caron, Ishan Misra, Julien Mairal, Priya Goyal 等NeurIPS 2020 · 被引用 5,249 次
- Self-labelling via simultaneous clustering and representation learningYuki Markus Asano, Christian Rupprecht, Andrea VedaldiICLR 2020 · 被引用 873 次
- Mutual Mean-Teaching: Pseudo Label Refinery for Unsupervised Domain Adaptation on Person Re-identificationYixiao Ge, Dapeng Chen, Hongsheng LiICLR 2020 · 被引用 651 次
- Self-Similarity Grouping: A Simple Unsupervised Cross Domain Adaptation Approach for Person Re-IdentificationYang Fu, Yunchao Wei, Guanshuo Wang, Yuqian Zhou 等ICCV 2019 · 被引用 471 次
- Self-Training With Progressive Augmentation for Unsupervised Cross-Domain Person Re-IdentificationXinyu Zhang, Jiewei Cao, Chunhua Shen, Mingyu YouICCV 2019 · 被引用 240 次
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