Lifelong Person Re-identification by Pseudo Task Knowledge Preservation
Wenhang Ge, Junlong Du, Ancong Wu, Yuqiao Xian, Ke Yan, Feiyue Huang, Wei-Shi Zheng
摘要
In real world, training data for person re-identification (Re-ID) is collected discretely with spatial and temporal variations, which requires a model to incrementally learn new knowledge without forgetting old knowledge. This problem is called lifelong person re-identification (LReID). Variations of illumination and background for images of each task exhibit task-specific image style and lead to task-wise domain gap. In addition to missing data from the old tasks, task-wise domain gap is a key factor for catastrophic forgetting in LReID, which is ignored in existing approaches for LReID. The model tends to learn task-specific knowledge with task-wise domain gap, which results in stability and plasticity dilemma. To overcome this problem, we cast LReID as a domain adaptation problem and propose a pseudo task knowledge preservation framework to alleviate the domain gap. Our framework is based on a pseudo task transformation module which maps the features of the new task into the feature space of the old tasks to complement the limited saved exemplars of the old tasks. With extra transformed features in the task-specific feature space, we propose a task-specific domain consistency loss to implicitly alleviate the task-wise domain gap for learning task-shared knowledge instead of task-specific one. Furthermore, to guide knowledge preservation with the feature distributions of the old tasks, we propose to preserve knowledge on extra pseudo tasks which jointly distills knowledge and discriminates identity, in order to achieve a better trade-off between stability and plasticity for lifelong learning with task-wise domain gap. Extensive experiments demonstrate the superiority of our method as compared with the state-of-the-art lifelong learning and LReID methods.
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引用它的顶会 Paper12
- Lifelong Person Re-identification via Knowledge Refreshing and ConsolidationChunlin Yu, Ye Shi, Zimo Liu, Shenghua Gao 等AAAI 2023 · 被引用 52 次
- LSTKC: Long Short-Term Knowledge Consolidation for Lifelong Person Re-identificationKunlun Xu, Xu Zou, Jiahuan ZhouAAAI 2024 · 被引用 31 次
- Distribution-Aware Knowledge Prototyping for Non-Exemplar Lifelong Person Re-IdentificationKunlun Xu, Xu Zou, Yuxin Peng, Jiahuan ZhouCVPR 2024 · 被引用 16 次
- Handling Label Uncertainty for Camera Incremental Person Re-IdentificationZexian Yang, Dayan Wu, Wanqian Zhang, Bo Li 等ACM MM 2023 · 被引用 14 次
- DASK: Distribution Rehearsing via Adaptive Style Kernel Learning for Exemplar-Free Lifelong Person Re-IdentificationKunlun Xu, Chenghao Jiang, Peixi Xiong, Yuxin Peng 等AAAI 2025 · 被引用 14 次
它引用的顶会 Paper18
- Similarity-Preserving Knowledge DistillationFrederick Tung, Greg MoriICCV 2019 · 被引用 1,214 次
- ABD-Net: Attentive but Diverse Person Re-IdentificationTianlong Chen, Shaojin Ding, Jingyi Xie, Ye Yuan 等ICCV 2019 · 被引用 544 次
- Camera-Aware Proxies for Unsupervised Person Re-IdentificationMenglin Wang, Baisheng Lai, Jianqiang Huang, Xiaojin Gong 等AAAI 2021 · 被引用 247 次
- Exploiting Sample Uncertainty for Domain Adaptive Person Re-IdentificationKecheng Zheng, Cuiling Lan, Wenjun Zeng, Zhizheng Zhang 等AAAI 2021 · 被引用 190 次
- Deep Reinforcement Active Learning for Human-in-the-Loop Person Re-IdentificationZimo Liu, Jingya Wang, Shaogang Gong, Dacheng Tao 等ICCV 2019 · 被引用 117 次
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