Domain Adaptive Attention Learning for Unsupervised Person Re-Identification
Yangru Huang, Peixi Peng, Yi Jin, Yidong Li, Junliang Xing
摘要
Person re-identification (Re-ID) across multiple datasets is a challenging task due to two main reasons: the presence of large cross-dataset distinctions and the absence of annotated target instances. To address these two issues, this paper proposes a domain adaptive attention learning approach to reliably transfer discriminative representation from the labeled source domain to the unlabeled target domain. In this approach, a domain adaptive attention model is learned to separate the feature map into domain-shared part and domain-specific part. In this manner, the domain-shared part is used to capture transferable cues that can compensate cross-dataset distinctions and give positive contributions to the target task, while the domain-specific part aims to model the noisy information to avoid the negative transfer caused by domain diversity. A soft label loss is further employed to take full use of unlabeled target data by estimating pseudo labels. Extensive experiments on the Market-1501, DukeMTMC-reID and MSMT17 benchmarks demonstrate the proposed approach outperforms the state-of-the-arts.
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引用它的顶会 Paper6
- Online Pseudo Label Generation by Hierarchical Cluster Dynamics for Adaptive Person Re-identificationYi Zheng, Shixiang Tang, Guolong Teng, Yixiao Ge 等ICCV 2021 · 被引用 105 次
- ToAlign: Task-Oriented Alignment for Unsupervised Domain AdaptationGuoqiang Wei, Cuiling Lan, Wenjun Zeng, Zhizheng Zhang 等NeurIPS 2021 · 被引用 80 次
- Unsupervised Domain Adaptation for Person Re-identification via Heterogeneous Graph AlignmentMinying Zhang, Kai Liu, Yidong Li, Shihui Guo 等AAAI 2021 · 被引用 49 次
- Domain Adaptive Person Re-Identification via Coupling OptimizationXiaobin Liu, Shiliang ZhangACM MM 2020 · 被引用 39 次
- Fine-grained Unsupervised Domain Adaptation for Gait RecognitionKang Ma, Ying Fu, Dezhi Zheng, Yunjie Peng 等ICCV 2023 · 被引用 22 次
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