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Nicholas Sharp

7 accepted papers

2026

FreeForm: Reduced-Order Deformable Simulation from Particle-Based Skinning Eigenmodes

CVPR 2026

We present a novel formulation for mesh-free, reduced-order simulation of deformable hyperelastic objects. Existing work in reduced-order elastodynamic simulation represents the input geometry by either meshes, which can be difficult to obtain due to challenges in scanning and triangulating complex

Cited by 0SourceScholar
2025

PartField: Learning 3D Feature Fields for Part Segmentation and Beyond

ICCV 2025poster

We propose PartField, a feedforward approach for learning part-based 3D features, which captures the general concept of parts and their hierarchy without relying on predefined templates or text-based names, and can be applied to open-world 3D shapes across various modalities. PartField requires only…

Cited by 0SourcePDFScholar
2023

ATT3D: Amortized Text-to-3D Object Synthesis

ICCV 2023poster

Text-to-3D modelling has seen exciting progress by combining generative text-to-image models with image-to-3D methods like Neural Radiance Fields. DreamFusion recently achieved high-quality results but requires a lengthy, per-prompt optimization to create 3D objects. To address this, we amortize opt…

Cited by 82PDFScholar
2023

TexFusion: Synthesizing 3D Textures with Text-Guided Image Diffusion Models

ICCV 2023oral

We present TexFusion(Texture Diffusion), a new method to synthesize textures for given 3D geometries, using only large-scale text-guided image diffusion models. In contrast to recent works that leverage 2D text-to-image diffusion models to distill 3D objects using a slow and fragile optimization pro…

Cited by 99PDFcodeScholar