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Note: This model card currently contains
only the Skeleton&Skinning Prediction component of the UniRig framework, trained specifically on the
Articulation-XL2.0 dataset. The skinning weight prediction model and models trained on the Rig-XL/VRoid datasets described in the paper will be released separately at a later date.
UniRig is a unified framework for automatic skeletal rigging of 3D models, developed by Tsinghua University and by
Tripo (
VAST AI Research). It addresses the significant bottleneck of rigging in 3D animation pipelines by providing a powerful model capable of generating high-quality skeleton hierarchies and skinning weights for a diverse range of input meshes, including humans, animals, fictional characters, and even inorganic structures.
This model serves as the first stage of the full UniRig pipeline. The predicted skeleton can be used as input for the forthcoming skinning weight prediction model or other downstream rigging tasks.
Follow
VAST AI Research updates for future releases.
For detailed usage instructions, please visit our
GitHub repository.