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Dongkwan Lee

3 accepted papers

2025

Unlocking the Potential of Unlabeled Data in Semi-Supervised Domain Generalization

CVPR 2025poster

We address the problem of semi-supervised domain generalization (SSDG), where the distributions of train and test data differ, and only a small amount of labeled data along with a larger amount of unlabeled data are available during training. Existing SSDG methods that leverage only the unlabeled sa…

2024

What How and When Should Object Detectors Update in Continually Changing Test Domains?

CVPR 2024poster

It is a well-known fact that the performance of deep learning models deteriorates when they encounter a distribution shift at test time. Test-time adaptation (TTA) algorithms have been proposed to adapt the model online while inferring test data. However existing research predominantly focuses on cl…