Clothing Status Awareness for Long-Term Person Re-Identification
Yan Huang, Qiang Wu, Jingsong Xu, Yi Zhong, Zhaoxiang Zhang
Abstract
Long-Term person re-identification (LT-reID) exposes extreme challenges because of the longer time gaps between two recording footages where a person is likely to change clothing. There are two types of approaches for LT-reID: biometrics-based approach and data adaptation based approach. The former one is to seek clothing irrelevant biometric features. However, seeking high quality biometric feature is the main concern. The latter one adopts fine-tuning strategy by using data with significant clothing change. However, the performance is compromised when it is applied to cases without clothing change. This work argues that these approaches in fact are not aware of clothing status (i.e., change or no-change) of a pedestrian. Instead, they blindly assume all footages of a pedestrian have different clothes. To tackle this issue, a Regularization via Clothing Status Awareness Network (RCSANet) is proposed to regularize descriptions of a pedestrian by embedding the clothing status awareness. Consequently, the description can be enhanced to maintain the best ID discriminative feature while improving its robustness to real-world LT-reID where both clothing-change case and no-clothing-change case exist. Experiments show that RCSANet performs reasonably well on three LT-reID datasets.
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Install the CLIlune papers fulltext 3ebb800e-ac0d-4cdf-b6b0-14daf751dec6Cited by top-tier papers18
- Clothes-Changing Person Re-identification with RGB Modality OnlyXinqian Gu, Hong Chang, Bingpeng Ma, Shutao Bai et al.CVPR 2022 · 226 citations
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- Semantic-aware Consistency Network for Cloth-changing Person Re-IdentificationPeini Guo, Hong Liu, Jianbing Wu, Guoquan Wang et al.ACM MM 2023 · 37 citations
- Generalizable Person Re-identification via Self-Supervised Batch Norm Test-Time AdaptionKe Han, Chenyang Si, Yan Huang, Liang Wang et al.AAAI 2022 · 25 citations
Builds on3
- Self-Training With Progressive Augmentation for Unsupervised Cross-Domain Person Re-IdentificationXinyu Zhang, Jiewei Cao, Chunhua Shen, Mingyu YouICCV 2019 · 240 citations
- SBSGAN: Suppression of Inter-Domain Background Shift for Person Re-IdentificationYan Huang, Qiang Wu, Jingsong Xu, Yi ZhongICCV 2019 · 98 citations
- COCAS: A Large-Scale Clothes Changing Person Dataset for Re-IdentificationShijie Yu, Shihua Li, Dapeng Chen, Rui Zhao et al.CVPR 2020
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