Unsupervised Domain Adaptation for Person Re-identification via Heterogeneous Graph Alignment
Minying Zhang, Kai Liu, Yidong Li, Shihui Guo, Hongtao Duan, Yimin Long, Yi Jin
Abstract
Unsupervised person re-identification (re-ID) is becoming increasingly popular due to its power in real-world systems such as public security and intelligent transportation systems. However, the person re-ID task is challenged by the problems of data distribution discrepancy across cameras and lack of label information. In this paper, we propose a coarse-tofine heterogeneous graph alignment (HGA) method to find cross-camera person matches by characterizing the unlabeled data as a heterogeneous graph for each camera. In the coarsealignment stage, we assign a projection for each camera and utilize an adversarial learning based method to align coarsegrained node groups from different cameras into a shared space, which consequently alleviates the distribution discrepancy between cameras. In the fine-alignment stage, we exploit potential fine-grained node groups in the shared space and introduce conservative alignment loss functions to constrain the graph aligning process, resulting in reliable pseudo labels as learning guidance. The proposed domain adaptation framework not only improves model generalization on target domain, but also facilitates mining and integrating the potential discriminative information across different cameras. Extensive experiments on benchmark datasets demonstrate that the proposed approach outperforms the state-of-the-arts.
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Cited by top-tier papers7
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- Lifelong Person Re-identification via Knowledge Refreshing and ConsolidationChunlin Yu, Ye Shi, Zimo Liu, Shenghua Gao et al.AAAI 2023 · 52 citations
- Lifelong Unsupervised Domain Adaptive Person Re-identification with Coordinated Anti-forgetting and AdaptationZhipeng Huang, Zhizheng Zhang, Cuiling Lan, Wenjun Zeng et al.CVPR 2022 · 47 citations
- From One to All: Learning to Match Heterogeneous and Partially Overlapped GraphsWeijie Liu, Hui Qian, Chao Zhang, Jiahao Xie et al.AAAI 2022 · 1 citation
Builds on9
- Self-Similarity Grouping: A Simple Unsupervised Cross Domain Adaptation Approach for Person Re-IdentificationYang Fu, Yunchao Wei, Guanshuo Wang, Yuqian Zhou et al.ICCV 2019 · 471 citations
- Self-Training With Progressive Augmentation for Unsupervised Cross-Domain Person Re-IdentificationXinyu Zhang, Jiewei Cao, Chunhua Shen, Mingyu YouICCV 2019 · 240 citations
- Cross-Dataset Person Re-Identification via Unsupervised Pose Disentanglement and AdaptationYu-Jhe Li, Ci-Siang Lin, Yan-Bo Lin, Yu-Chiang Frank WangICCV 2019 · 204 citations
- Asymmetric Co-Teaching for Unsupervised Cross-Domain Person Re-IdentificationFengxiang Yang, Ke Li, Zhun Zhong, Zhiming Luo et al.AAAI 2020 · 159 citations
- A Novel Unsupervised Camera-Aware Domain Adaptation Framework for Person Re-IdentificationLei Qi, Lei Wang, Jing Huo, Luping Zhou et al.ICCV 2019 · 144 citations
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