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Goal Driven Motion Generation

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WANDR is a conditional Variational AutoEncoder that generates realistic motion of human avatars that navigate towards an arbitrary goal location and reach for it. Input to our method is the initial pose of the avatar, the goal location, and the desired motion duration. Output is a sequence of poses that guide the avatar from the initial pose to the goal location and place the wrist on it. WANDR is the first human motion generation model that is driven by an active feedback loop learned purely from data, without any extra steps of reinforcement learning.

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Perceiving Systems Conference Paper WANDR: Intention-guided Human Motion Generation Diomataris, M., Athanasiou, N., Taheri, O., Wang, X., Hilliges, O., Black, M. J. In 2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), :927,936, IEEE Computer Society, CVPR, June 2024 (Published) project website arXiv YouTube Video Code CVF DOI URL BibTeX