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Geometry-aware triplane diffusion for single shape generation with feature alignment
DOI:10.1016/j.cag.2025.104384.png)
Abstract
En 中文
• A unified framework for single-shape 3D generation from one exemplar input. • Triplane autoencoder with spatial predictor captures fine-grained geometry. • Soft feature alignment ensures fidelity and diversity in shape synthesis. • Multi-scale diffusion improves structural coherence and training stability • The method sets a strong baseline for data-sparse 3D generative modeling.
Keywords:
3D generation
triplane autoencoder
soft feature alignment
multi-scale diffusion
shape synthesis

