Learning Instance-level Spatial-Temporal Patterns for Person Re-identification
Min Ren, Lingxiao He, Xingyu Liao, Wu Liu, Yunlong Wang, Tieniu Tan
摘要
Person re-identification (Re-ID) aims to match pedestrians under dis-joint cameras. Most Re-ID methods formulate it as visual representation learning and image search, and its accuracy is consequently affected greatly by the search space. Spatial-temporal information has been proven to be efficient to filter irrelevant negative samples and significantly improve Re-ID accuracy. However, existing spatial-temporal person Re-ID methods are still rough and do not exploit spatial-temporal information sufficiently. In this paper, we propose a novel Instance-level and Spatial-Temporal Disentangled Re-ID method (InSTD), to improve Re-ID accuracy. In our proposed framework, personalized information such as moving direction is explicitly considered to further narrow down the search space. Besides, the spatial-temporal transferring probability is disentangled from joint distribution to marginal distribution, so that outliers can also be well modeled. Abundant experimental analyses are presented, which demonstrates the superiority and provides more insights into our method. The proposed method achieves mAP of 90.8% on Market-1501 and 89.1% on DukeMTMC-reID, improving from the baseline 82.2% and 72.7%, respectively. Besides, in order to provide a better benchmark for person re-identification, we release a cleaned data list of DukeMTMC-reID with this paper: https://github. com/RenMin1991/cleaned-DukeMTMC-reID/ * This work is done when Min Ren is an intern at JD AI Research.
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引用它的顶会 Paper3
- Implicit Discriminative Knowledge Learning for Visible-Infrared Person Re-IdentificationKaijie Ren, Lei ZhangCVPR 2024 · 被引用 54 次
- Towards Efficient Object Re-Identification with a Novel Cloud-Edge Collaborative FrameworkChuanming Wang, Yuxin Yang, Mengshi Qi, Huanhuan Zhang 等AAAI 2025 · 被引用 6 次
- Event-Guided Person Re-Identification via Sparse-Dense Complementary LearningChengzhi Cao, Xueyang Fu, Hongjian Liu, Yukun Huang 等CVPR 2023
它引用的顶会 Paper5
- Pose-Guided Feature Alignment for Occluded Person Re-IdentificationJiaxu Miao, Yu Wu, Ping Liu, Yuhang Ding 等ICCV 2019 · 被引用 589 次
- Foreground-Aware Pyramid Reconstruction for Alignment-Free Occluded Person Re-IdentificationLingxiao He, Yinggang Wang, Wu Liu, He Zhao 等ICCV 2019 · 被引用 223 次
- Salience-Guided Cascaded Suppression Network for Person Re-IdentificationXuesong Chen, Canmiao Fu, Yong Zhao, Feng Zheng 等CVPR 2020
- Relation-Aware Global Attention for Person Re-IdentificationZhizheng Zhang, Cuiling Lan, Wenjun Zeng, Xin Jin 等CVPR 2020
- High-Order Information Matters: Learning Relation and Topology for Occluded Person Re-IdentificationGuan'an Wang, Shuo Yang, Huanyu Liu, Zhicheng Wang 等CVPR 2020
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