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2025 | OriginalPaper | Chapter

Learn from the Learnt: Source-Free Active Domain Adaptation via Contrastive Sampling and Visual Persistence

Authors : Mengyao Lyu, Tianxiang Hao, Xinhao Xu, Hui Chen, Zijia Lin, Jungong Han, Guiguang Ding

Published in: Computer Vision – ECCV 2024

Publisher: Springer Nature Switzerland

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Abstract

The chapter introduces a novel source-free active domain adaptation (SFADA) paradigm that addresses the challenges of adapting models to new domains without access to source data. The proposed method, Learn from the Learnt (LFTL), employs Contrastive Active Sampling (CAS) to identify the most informative target samples for annotation and Visual Persistence-guided Adaptation (VPA) to maintain domain-invariant knowledge during adaptation. The LFTL framework demonstrates superior performance and efficiency compared to existing SFUDA and ADA methods, making it a promising solution for real-world applications with limited annotation budgets. The authors validate their approach through extensive experiments on benchmark datasets, showcasing its effectiveness in achieving high adaptation accuracy while minimizing computational and annotation costs.

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Metadata
Title
Learn from the Learnt: Source-Free Active Domain Adaptation via Contrastive Sampling and Visual Persistence
Authors
Mengyao Lyu
Tianxiang Hao
Xinhao Xu
Hui Chen
Zijia Lin
Jungong Han
Guiguang Ding
Copyright Year
2025
DOI
https://doi.org/10.1007/978-3-031-73232-4_13

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