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Jinseok Bae

6 accepted papers

2025

Event-Driven Storytelling with Multiple Lifelike Humans in a 3D Scene

ICCV 2025poster

In this work, we propose a framework that creates a lively virtual dynamic scene with contextual motions of multiple humans. Generating multi-human contextual motion requires holistic reasoning over dynamic relationships among human-human and human-scene interactions. We adapt the power of a large l…

Cited by 0SourcePDFScholar
2025

Less is More: Improving Motion Diffusion Models with Sparse Keyframes

ICCV 2025poster

Recent advances in motion diffusion models have led to remarkable progress in diverse motion generation tasks, including text-to-motion synthesis.However, existing approaches represent motions as dense frame sequences, requiring the model to process redundant or less informative frames.The processin…

Cited by 0SourcePDFScholar
2022

Neural Marionette: Unsupervised Learning of Motion Skeleton and Latent Dynamics from Volumetric Video

AAAI 2022technical

We present Neural Marionette, an unsupervised approach that discovers the skeletal structure from a dynamic sequence and learns to generate diverse motions that are consistent with the observed motion dynamics. Given a video stream of point cloud observation of an articulated body under arbitrary mo…

Cited by 6SourcePDFScholar
2021

GATSBI: Generative Agent-Centric Spatio-Temporal Object Interaction

CVPR 2021poster

We present GATSBI, a generative model that can transform a sequence of raw observations into a structured latent representation that fully captures the spatio-temporal context of the agent's actions. In vision-based decision-making scenarios, an agent faces complex high-dimensional observations wher…

Cited by 7PDFcodeScholar