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|
|
| # Tiny AutoEncoder |
|
|
| Tiny AutoEncoder for Stable Diffusion (TAESD) was introduced in [madebyollin/taesd](https://github.com/madebyollin/taesd) by Ollin Boer Bohan. It is a tiny distilled version of Stable Diffusion's VAE that can quickly decode the latents in a [`StableDiffusionPipeline`] or [`StableDiffusionXLPipeline`] almost instantly. |
|
|
| To use with Stable Diffusion v-2.1: |
|
|
| ```python |
| import torch |
| from diffusers import DiffusionPipeline, AutoencoderTiny |
| |
| pipe = DiffusionPipeline.from_pretrained( |
| "stabilityai/stable-diffusion-2-1-base", torch_dtype=torch.float16 |
| ) |
| pipe.vae = AutoencoderTiny.from_pretrained("madebyollin/taesd", torch_dtype=torch.float16) |
| pipe = pipe.to("cuda") |
| |
| prompt = "slice of delicious New York-style berry cheesecake" |
| image = pipe(prompt, num_inference_steps=25).images[0] |
| image |
| ``` |
|
|
| To use with Stable Diffusion XL 1.0 |
|
|
| ```python |
| import torch |
| from diffusers import DiffusionPipeline, AutoencoderTiny |
| |
| pipe = DiffusionPipeline.from_pretrained( |
| "stabilityai/stable-diffusion-xl-base-1.0", torch_dtype=torch.float16 |
| ) |
| pipe.vae = AutoencoderTiny.from_pretrained("madebyollin/taesdxl", torch_dtype=torch.float16) |
| pipe = pipe.to("cuda") |
| |
| prompt = "slice of delicious New York-style berry cheesecake" |
| image = pipe(prompt, num_inference_steps=25).images[0] |
| image |
| ``` |
|
|
| ## AutoencoderTiny |
|
|
| [[autodoc]] AutoencoderTiny |
|
|
| ## AutoencoderTinyOutput |
|
|
| [[autodoc]] models.autoencoders.autoencoder_tiny.AutoencoderTinyOutput |
| |