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Chaelin Kim

3 accepted papers

2025

AnyMoLe: Any Character Motion In-betweening Leveraging Video Diffusion Models

CVPR 2025poster

Despite recent advancements in learning-based motion in-betweening, a key limitation has been overlooked: the requirement for character-specific datasets. In this work, we introduce AnyMoLe, a novel method that addresses this limitation by leveraging video diffusion models to generate motion in-betw…

2025

FFaceNeRF: Few-shot Face Editing in Neural Radiance Fields

CVPR 2025poster

Recent 3D face editing methods using masks have produced high-quality edited images by leveraging Neural Radiance Fields (NeRF). Despite their impressive performance, existing methods often provide limited user control due to the use of pre-trained segmentation masks. To utilize masks with a desired…

2025

SALAD: Skeleton-aware Latent Diffusion for Text-driven Motion Generation and Editing

CVPR 2025poster

Text-driven motion generation has advanced significantly with the rise of denoising diffusion models. However, previous methods often oversimplify representations for the skeletal joints, temporal frames, and textual words, limiting their ability to fully capture the information within each modality…