Learning Continual Compatible Representation for Re-indexing Free Lifelong Person Re-identification
Zhenyu Cui, Jiahuan Zhou, Xun Wang, Manyu Zhu, Yuxin Peng
摘要
Lifelong Person Re-identification (L-ReID) aims to learn from sequentially collected data to match a person across different scenes. Once an L-ReID model is updated using new data, all historical images in the gallery are required to be re-calculated to obtain new features for testing, known as "re-indexing". However, it is infeasible when raw images in the gallery are unavailable due to data privacy concerns, resulting in incompatible retrieval between the query and the gallery features calculated by different models, which causes significant performance degradation. In this paper, we focus on a new task called Re-indexing Free Lifelong Person Re-identification (RFL-ReID), which requires achieving effective L-ReID without re-indexing raw images in the gallery. To this end, we propose a Continual Compatible Representation (C 2 R) method, which facilitates the query feature calculated by the continuously updated model to effectively retrieve the gallery feature calculated by the old model in a compatible manner. Specifically, we design a Continual Compatible Transfer (CCT) network to continuously transfer and consolidate the old gallery feature into the new feature space. Besides, a Balanced Compatible Distillation module is introduced to achieve compatibility by aligning the transferred feature space with the new feature space. Finally, a Balanced Anti-forgetting Distillation module is proposed to eliminate the accumulated forgetting of old knowledge during the continual compatible transfer. Extensive experiments on several benchmark L-ReID datasets demonstrate the effectiveness of our method against state-of-the-art methods for both RFL-ReID and L-ReID tasks.
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引用它的顶会 Paper14
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- Unbiased Prototype Consistency Learning for Multi-Modal and Multi-Task Object Re-IdentificationZhongao Zhou, Bin Yang, Wenke Huang, Jun Chen 等NeurIPS 2025 · 被引用 2 次
- Self-Reinforcing Prototype Evolution with Dual-Knowledge Cooperation for Semi-Supervised Lifelong Person Re-IdentificationKunlun Xu, Fan Zhuo, Jiangmeng Li, Xu Zou 等ICCV 2025 · 被引用 2 次
它引用的顶会 Paper13
- Similarity-Preserving Knowledge DistillationFrederick Tung, Greg MoriICCV 2019 · 被引用 1,214 次
- Forward Compatible Few-Shot Class-Incremental LearningDa-Wei Zhou, Fu-Yun Wang, Han-Jia Ye, Liang Ma 等CVPR 2022 · 被引用 259 次
- Generalising without Forgetting for Lifelong Person Re-IdentificationGuile Wu, Shaogang GongAAAI 2021 · 被引用 61 次
- Lifelong Person Re-identification by Pseudo Task Knowledge PreservationWenhang Ge, Junlong Du, Ancong Wu, Yuqiao Xian 等AAAI 2022 · 被引用 54 次
- Lifelong Person Re-identification via Knowledge Refreshing and ConsolidationChunlin Yu, Ye Shi, Zimo Liu, Shenghua Gao 等AAAI 2023 · 被引用 52 次
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