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Bowen Tao

3 accepted papers

2024

CLAF: Contrastive Learning with Augmented Features for Imbalanced Semi-Supervised Learning

ICASSP 2024accepted

Due to the advantages of leveraging unlabeled data and learning meaningful representations, semi-supervised learning and contrastive learning have been progressively combined to achieve better performances in popular applications with few labeled data and abundant unlabeled data. One common manner i…

Cited by 0SourceScholar
2024

Twice Class Bias Correction for Imbalanced Semi-supervised Learning

AAAI 2024technical

Differing from traditional semi-supervised learning, class-imbalanced semi-supervised learning presents two distinct challenges: (1) The imbalanced distribution of training samples leads to model bias towards certain classes, and (2) the distribution of unlabeled samples is unknown and potentially d…