A list of prior model checkpoints that can be passed instead of the official prior model checkpoint in plug-and-play.
WARP
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WARP is a fully open-source collective featuring: - Würstchen (W) - Arroz-Con-Cosas (A) - Risotto (R) - Paella (P)
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Welcome to WARP. This is our little organization for multimodal generative models, focusing on the visual domain. We have been working with generative image models a lot and
will soon work on video models as well. Our main team consists of:
A special thanks to the Huggingface Team for helping to bring our research to Diffusers! (Special thanks to Kashif, Patrick and Sayak!)
Feel free to join our Discord channel!
Models:
Paella
- A simple & straightforward text-conditional image generation model that works on quantized latents.
- More details can be found in the paper, the blog post and the YouTube video.
- Only accessible through GitHub.
Würstchen
- An efficient text-to-image model to train and use for inference. Achieves competetive performance to state-of-the-art methods, while needing only a fraction of the compute.
- More details can be found in the paper.
- Versions:
Collections
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models
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warp-ai/wuerstchen
Text-to-Image
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warp-ai/EfficientNetEncoder
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warp-ai/wuerstchen-prior-model-base
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warp-ai/wuerstchen-prior-model-interpolated
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warp-ai/wuerstchen-prior
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warp-ai/wuerstchen-prior-model-finetuned
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