English

Disentangling Geometric Deformation Spaces in Generative Latent Shape Models

Computer Vision and Pattern Recognition 2023-03-21 v2 Machine Learning

Abstract

A complete representation of 3D objects requires characterizing the space of deformations in an interpretable manner, from articulations of a single instance to changes in shape across categories. In this work, we improve on a prior generative model of geometric disentanglement for 3D shapes, wherein the space of object geometry is factorized into rigid orientation, non-rigid pose, and intrinsic shape. The resulting model can be trained from raw 3D shapes, without correspondences, labels, or even rigid alignment, using a combination of classical spectral geometry and probabilistic disentanglement of a structured latent representation space. Our improvements include more sophisticated handling of rotational invariance and the use of a diffeomorphic flow network to bridge latent and spectral space. The geometric structuring of the latent space imparts an interpretable characterization of the deformation space of an object. Furthermore, it enables tasks like pose transfer and pose-aware retrieval without requiring supervision. We evaluate our model on its generative modelling, representation learning, and disentanglement performance, showing improved rotation invariance and intrinsic-extrinsic factorization quality over the prior model.

Keywords

Cite

@article{arxiv.2103.00142,
  title  = {Disentangling Geometric Deformation Spaces in Generative Latent Shape Models},
  author = {Tristan Aumentado-Armstrong and Stavros Tsogkas and Sven Dickinson and Allan Jepson},
  journal= {arXiv preprint arXiv:2103.00142},
  year   = {2023}
}

Comments

Accepted to IJCV

R2 v1 2026-06-23T23:33:46.943Z