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Tae Soo Kim

4 accepted papers

2024

Is user feedback always informative? Retrieval Latent Defending for Semi-Supervised Domain Adaptation without Source Data

ECCV 2024poster

"This paper aims to adapt the source model to the target environment, leveraging small user feedback (, labeled target data) readily available in real-world applications. We find that existing semi-supervised domain adaptation (SemiSDA) methods often suffer from poorly improved adaptation performanc…

2021

DASZL: Dynamic Action Signatures for Zero-shot Learning

AAAI 2021technical

There are many realistic applications of activity recognition where the set of potential activity descriptions is combinatorially large. This makes end-to-end supervised training of a recognition system impractical as no training set is practically able to encompass the entire label set. In this pap…

Cited by 32SourcePDFScholar