Overcoming Domain Knowledge Forgetting in Continual Test-Time Adaptation via Siamese Networks
2025
会议录名称INTERNATIONAL CONFERENCE ON ARTIFICIAL NEURAL NETWORKS
发表状态已投递待接收
摘要

Test-Time Adaptation (TTA) requires adapting a source-domain model to the target domain using online test data inputs. Existing methods that focus on adjusting normalization layers to swiftly adapt to a new domain often neglect the problem of domain knowledge forgetting, which hinders the model's generalization capability. To address this, we propose a novel Anti-forgetting Test-time Adaptation Network (ATAN) which consists of three Siamese networks---Forerunner, Bridge and Momentum. The bridge network transfers domain-specific knowledge from the forerunner network to the momentum network which effectively overcomes forgetting by integrating cross-domain knowledge. To further enhance the adaptability of the forerunner network, we propose reconstructing its loss function based on the voting information from the Siamese networks. To strengthen the learning of domain-invariant features, we introduce a weak augmentation consistency loss for the bridge network. Extensive experiments on corruption and natural shift datasets demonstrate the effectiveness and generalization of ATAN in long-term test-time domain adaptation scenarios.

会议录编者/会议主办者International Conference on Artificial Neural Networks
关键词Test-time adaptation Anti-forgetting Continual learning.
会议名称International Conference on Artificial Neural Networks
会议地点Campus of Vytautas Magnus University and Lithuanian University of Health Sciences, Kaunas, Lithuania
会议日期September 9 to September 12, 2025
学科门类工学::计算机科学与技术(可授工学、理学学位)
收录类别IC
语种英语
文献类型会议论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/510717
专题信息科学与技术学院_硕士生
通讯作者Dongchen Zhu
作者单位
1.Shanghaitech University
2.SIMIT
3.University of Chinese Academy of Sciences
第一作者单位上海科技大学
第一作者的第一单位上海科技大学
推荐引用方式
GB/T 7714
Zhihong Xu,Wenjun Shi,Dongchen Zhu,et al. Overcoming Domain Knowledge Forgetting in Continual Test-Time Adaptation via Siamese Networks[C]//International Conference on Artificial Neural Networks,2025.
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