Weiming Zhuang
Weiming Zhuang
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face recognition
Federated Unsupervised Domain Adaptation for Face Recognition
We propose federated unsupervised domain adaptation for face recognition, FedFR. FedFR jointly optimizes clustering-based domain adaptation and federated learning to elevate performance on the target domain. Specifically, for unlabeled data in the target domain, we enhance a clustering algorithm with distance constrain to improve the quality of predicted pseudo labels. Besides, we propose a new domain constraint loss (DCL) to regularize source domain training in federated learning.
Weiming Zhuang
,
Xin Gan
,
Xuesen Zhang
,
Yonggang Wen
,
Shuai Zhang
,
Shuai Yi
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