

Stable Zero123
Overview :
Stable Zero123 is an in-house trained model for view-conditioned image generation. Compared to the previous state-of-the-art model Zero123-XL, Stable Zero123 produces significantly improved results. It achieves this through three key innovations: 1. A substantially filtered training dataset from Objaverse, retaining only high-quality 3D objects and rendering them more realistically than previous methods. 2. An estimated camera angle is provided to the model during both training and inference, enabling it to make more informed and higher-quality predictions. 3. Pre-computed datasets (pre-calculated latent variables) and an improved data loader that supports higher batch sizes, coupled with the first innovation, result in a 40x improvement in training efficiency compared to Zero123-XL. The model is now available on Hugging Face for researchers and non-commercial users to download and experiment with.
Target Users :
3D Object Generation for Research Purposes
Use Cases
Research institutions using Stable Zero123 for 3D object generation research
Academia utilizing Stable Zero123 for image generation experiments
Discussion on view-conditioned image generation using Stable Zero123 in the developer community
Features
Generate High-Quality 3D Objects
Support View-Conditioned Image Generation
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