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Prometheus: 3D-Aware Latent Diffusion Models for Feed-Forward Text-to-3D Scene Generation

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In this work, we introduce Prometheus, a 3D-aware latent diffusion model for text-to-3D generation at both object and scene levels in seconds. We formulate 3D scene generation as multi-view, feed-forward, pixel-aligned 3D Gaussian generation within the latent diffusion paradigm. To ensure generalizability, we build our model upon pre-trained text-to-image generation model with only minimal adjustments, and further train it using a large number of images from both single-view and multi-view datasets. Furthermore, we introduce an RGB-D latent space into 3D Gaussian generation to disentangle appearance and geometry information, enabling efficient feed-forward generation of 3D Gaussians with better fidelity and geometry. Extensive experimental results demonstrate the effectiveness of our method in both feed-forward 3D Gaussian reconstruction and text-to-3D generation. Project page: https://freemty.github.io/project-prometheus/

Yuanbo Yang, Jiahao Shao, Xinyang Li, Yujun Shen, Andreas Geiger, Yiyi Liao• 2024

Related benchmarks

TaskDatasetResultRank
Text-to-3D GenerationT³Bench Single Object with Surroundings
BRISQUE58.88
14
Text-to-3D GenerationT³Bench Single Object
Alignment Score32.9
11
3D ReconstructionTartanair synthetic (Hard)
PSNR19.49
3
3D ReconstructionTartanair synthetic (Easy)
PSNR20.95
3
3D ReconstructionTartanair Medium synthetic
PSNR20.15
3
Text-to-3D Generation80 Scene-Level text prompts
BRISQUE49.63
2
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