Instance-Guided Context Rendering for Cross-Domain Person Re-Identification
Yanbei Chen, Xiatian Zhu, Shaogang Gong
摘要
Existing person re-identification (re-id) methods mostly assume the availability of large-scale identity labels for model learning in any target domain deployment. This greatly limits their scalability in practice. To tackle this limitation, we propose a novel Instance-Guided Context Rendering scheme, which transfers the source person identities into diverse target domain contexts to enable supervised re-id model learning in the unlabelled target domain. Unlike previous image synthesis methods that transform the source person images into limited fixed target styles, our approach produces more visually plausible, and diverse synthetic training data. Specifically, we formulate a dual conditional generative adversarial network that augments each source person image with rich contextual variations. To explicitly achieve diverse rendering effects, we leverage abundant unlabelled target instances as contextual guidance for image generation. Extensive experiments on Market-1501, DukeMTMC-reID and CUHK03 benchmarks show that the re-id performance can be significantly improved when using our synthetic data in cross-domain re-id model learning.
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引用它的顶会 Paper24
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- ICE: Inter-instance Contrastive Encoding for Unsupervised Person Re-identificationHao Chen, Benoit Lagadec, François BrémondICCV 2021 · 被引用 258 次
- AXM-Net: Implicit Cross-Modal Feature Alignment for Person Re-identificationAmmarah Farooq, Muhammad Awais, Josef Kittler, Syed Safwan KhalidAAAI 2022 · 被引用 126 次
- 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
- SECRET: Self-Consistent Pseudo Label Refinement for Unsupervised Domain Adaptive Person Re-identificationTao He, Leqi Shen, Yuchen Guo, Guiguang Ding 等AAAI 2022 · 被引用 100 次
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