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Simone Foti

6 accepted papers

2026

Geometric Neural Distance Fields for Learning Human Motion Priors

CVPR 2026

We introduce Neural Riemannian Motion Fields (\name), a novel 3D generative human motion prior that enables robust, temporally consistent, and physically plausible 3D motion recovery. Unlike existing VAE or diffusion-based methods, our higher-order motion prior explicitly models the human motion in

Cited by 0SourceScholar
2026

Parallelised Differentiable Straightest Geodesics for 3D Meshes

CVPR 2026

Machine learning has been progressively generalised to operate within non-Euclidean domains, but geometrically accurate methods for learning on surfaces are still falling behind. The lack of closed-form Riemannian operators, the non-differentiability of their discrete counterparts, and poor parallel

Cited by 0SourceScholar
2024

UV-free Texture Generation with Denoising and Geodesic Heat Diffusion

NeurIPS 2024poster

Seams, distortions, wasted UV space, vertex-duplication, and varying resolution over the surface are the most prominent issues of the standard UV-based texturing of meshes. These issues are particularly acute when automatic UV-unwrapping techniques are used. For this reason, instead of generating te…

2023

SARAMIS: Simulation Assets for Robotic Assisted and Minimally Invasive Surgery

NeurIPS 2023poster

Minimally-invasive surgery (MIS) and robot-assisted minimally invasive (RAMIS) surgery offer well-documented benefits to patients such as reduced post-operative pain and shorter hospital stays. However, the automation of MIS and RAMIS through the use of AI has been slow due to difficulties in data a…

2022

3D Shape Variational Autoencoder Latent Disentanglement via Mini-Batch Feature Swapping for Bodies and Faces

CVPR 2022oral

Learning a disentangled, interpretable, and structured latent representation in 3D generative models of faces and bodies is still an open problem. The problem is particularly acute when control over identity features is required. In this paper, we propose an intuitive yet effective self-supervised a…

Cited by 20PDFcodeScholar