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Jul, 2024
对抗对比训练用于无监督领域自适应
Contrastive Adversarial Training for Unsupervised Domain Adaptation
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Jiahong Chen, Zhilin Zhang, Lucy Li, Behzad Shahrasbi, Arjun Mishra
TL;DR
提出了一种新颖的对比对抗训练 (Contrastive Adversarial Training, CAT) 方法,通过利用源域样本来强化和规范目标域的特征生成,以解决领域适应中由于大模型训练和目标域微调缺乏标记数据而导致的问题。该方法可以轻松插入现有模型并显著提高性能。
Abstract
domain adversarial training
has shown its effective capability for finding domain invariant feature representations and been successfully adopted for various domain adaptation tasks. However, recent advances of
large mo
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