Implicit Sample Extension for Unsupervised Person Re-Identification
Xinyu Zhang, Dongdong Li, Zhigang Wang, Jian Wang, Errui Ding, Javen Qinfeng Shi, Zhaoxiang Zhang, Jingdong Wang
摘要
Most existing unsupervised person re-identification (Re-ID) methods use clustering to generate pseudo labels for model training. Unfortunately, clustering sometimes mixes different true identities together or splits the same identity into two or more sub clusters. Training on these noisy clusters substantially hampers the Re-ID accuracy. Due to the limited samples in each identity, we suppose there may lack some underlying information to well reveal the accurate clusters. To discover these information, we propose an Implicit Sample Extension (ISE) method to generate what we call support samples around the cluster boundaries. Specifically, we generate support samples from actual samples and their neighbouring clusters in the embedding space through a progressive linear interpolation (PLI) strategy. PLI controls the generation with two critical factors, i.e., 1) the direction from the actual sample towards its K-nearest clusters and 2) the degree for mixing up the context information from the K-nearest clusters. Meanwhile, given the support samples, ISE further uses a label-preserving loss to pull them towards their corresponding actual samples, so as to compact each cluster. Consequently, ISE reduces the "sub and mixed" clustering errors, thus improving the Re-ID performance. Extensive experiments demonstrate that the proposed method is effective and achieves state-of-the-art performance for unsupervised person Re-ID. Code is available at: https: //github.com/PaddlePaddle/PaddleClas .
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引用它的顶会 Paper27
- PLIP: Language-Image Pre-training for Person Representation LearningJialong Zuo, Jiahao Hong, Feng Zhang, Changqian Yu 等NeurIPS 2024 · 被引用 96 次
- Composed Image Retrieval with Text Feedback via Multi-grained Uncertainty RegularizationYiyang Chen, Zhedong Zheng, Wei Ji, Leigang Qu 等ICLR 2024 · 被引用 80 次
- CDUL: CLIP-Driven Unsupervised Learning for Multi-Label Image ClassificationRabab Abdelfattah, Qing Guo, Xiaoguang Li, Xiaofeng Wang 等ICCV 2023 · 被引用 58 次
- HAP: Structure-Aware Masked Image Modeling for Human-Centric PerceptionJunkun Yuan, Xinyu Zhang, Hao Zhou, Jian Wang 等NeurIPS 2023 · 被引用 46 次
- Unified Pre-training with Pseudo Texts for Text-To-Image Person Re-identificationZhiyin Shao, Xinyu Zhang, Changxing Ding, Jian Wang 等ICCV 2023 · 被引用 46 次
它引用的顶会 Paper18
- CutMix: Regularization Strategy to Train Strong Classifiers With Localizable FeaturesSangdoo Yun, Dongyoon Han, Sanghyuk Chun, Seong Joon Oh 等ICCV 2019 · 被引用 5,843 次
- Self-paced Contrastive Learning with Hybrid Memory for Domain Adaptive Object Re-IDYixiao Ge, Feng Zhu, Dapeng Chen, Rui Zhao 等NeurIPS 2020 · 被引用 688 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
- ICE: Inter-instance Contrastive Encoding for Unsupervised Person Re-identificationHao Chen, Benoit Lagadec, François BrémondICCV 2021 · 被引用 258 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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