SCEPTER
S
SCEPTER
Overview :
SCEPTER is an open-source code library dedicated to training, tuning, and inference for generative models, covering a range of downstream tasks such as image generation, transfer, and editing. It integrates mainstream implementations from the community as well as independently developed methods from Alibaba's Unisound Lab, offering a comprehensive and general-purpose toolkit for researchers and practitioners in the generative field. This versatile library aims to promote innovation and accelerate the progress of this rapidly evolving field.
Target Users :
["Research","Quick Prototyping","Pre-training Tuning","Generative Applications"]
Total Visits: 474.6M
Top Region: US(19.34%)
Website Views : 93.6K
Use Cases
Model fine-tuning for text-to-image generation tasks
Image style transfer based on Stable Diffusion
Controllable image synthesis applications
Features
Text-to-Image Generation
Controllable Image Synthesis
Image Editing (Planned)
Training/Inference: Distributed, File System, Deployment
Data Management
Training
Inference
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