TAPESTRY: From Geometry to Appearance via Consistent Turntable Videos
Yan Zeng, Haoran Jiang, Kaixin Yao, Qixuan Zhang, Longwen Zhang, Lan Xu, Jingyi Yu

TL;DR
TAPESTRY introduces a geometry-conditioned video diffusion framework that generates consistent, high-fidelity turntable videos for untextured 3D models, enabling improved 3D reconstruction and appearance synthesis.
Contribution
The paper presents a novel geometry-conditioned video diffusion approach for generating consistent turntable videos, enhancing 3D reconstruction and appearance synthesis from untextured meshes.
Findings
Outperforms existing methods in video consistency.
Produces high-quality, self-consistent turntable videos.
Enables automated creation of complete 3D assets.
Abstract
Automatically generating photorealistic and self-consistent appearances for untextured 3D models is a critical challenge in digital content creation. The advancement of large-scale video generation models offers a natural approach: directly synthesizing 360-degree turntable videos (TTVs), which can serve not only as high-quality dynamic previews but also as an intermediate representation to drive texture synthesis and neural rendering. However, existing general-purpose video diffusion models struggle to maintain strict geometric consistency and appearance stability across the full range of views, making their outputs ill-suited for high-quality 3D reconstruction. To this end, we introduce TAPESTRY, a framework for generating high-fidelity TTVs conditioned on explicit 3D geometry. We reframe the 3D appearance generation task as a geometry-conditioned video diffusion problem: given a 3D…
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Taxonomy
TopicsGenerative Adversarial Networks and Image Synthesis · 3D Shape Modeling and Analysis · Computer Graphics and Visualization Techniques
