Model reference · open weights

Anything-Preservation

Available as managed deployment Image AdamOswald1 · community Text→image 1 variants 839 dl/mo

Anything-Preservation is an open-weight image model from AdamOswald1. AxForge deploys and operates it for you on dedicated EU-owned hardware — with the licence handled where one is required.

Available as managed deployment — configured and operated for you on dedicated EU hardware, quoted per deployment.

What it is

Released byAdamOswald1
TypeImage models
TaskText→image
Parameters (lead)860M
Runs withdiffusers
Released2023-01-18
Popularity839 downloads / month
LicenceOpen weights

About

What Anything-Preservation is

DISCLAIMER! This Is A Preservation Repository!

Anything V3 - Better VAE

Welcome to Anything V3 - Better VAE. It currently has three model formats: diffusers, ckpt, and safetensors. You'll never see a grey image result again. This model is designed to produce high-quality, highly detailed anime-style images with just a few prompts. Like other anime-style Stable Diffusion models, it also supports danbooru tags for image generation. e.g. 1girl, white hair, golden eyes, beautiful eyes, detail, flower meadow, cumulonimbus clouds, lighting, detailed sky, garden

Gradio

We support a Gradio Web UI to run Anything V3 with Better VAE:

Read the full model card

🧨 Diffusers

This model can be used just like any other Stable Diffusion model. For more information, please have a look at the Stable Diffusion. You can also export the model to ONNX, MPS and/or FLAX/JAX.

You should install dependencies below in order to running the pipeline

pip install diffusers transformers accelerate scipy safetensors

Running the pipeline (if you don't swap the scheduler it will run with the default DDIM, in this example we are swapping it to DPMSolverMultistepScheduler):

from diffusers import StableDiffusionPipeline, DPMSolverMultistepScheduler

model_id = "Linaqruf/anything-v3-0-better-vae"

# Use the DPMSolverMultistepScheduler (DPM-Solver++) scheduler here instead
pipe = StableDiffusionPipeline.from_pretrained(model_id, torch_dtype=torch.float16)
pipe.scheduler = DPMSolverMultistepScheduler.from_config(pipe.scheduler.config)
pipe = pipe.to("cuda")

prompt = "masterpiece, best quality, illustration, beautiful detailed, finely detailed, dramatic light, intricate details, 1girl, brown hair, green eyes, colorful, autumn, cumulonimbus clouds, lighting, blue sky, falling leaves, garden"
negative_prompt = "lowres, bad anatomy, bad hands, text, error, missing fingers, extra digit, fewer digits, cropped, worst quality, low quality, normal quality, jpeg artifacts, signature, watermark, username, blurry, artist name"

with autocast("cuda"):
    image = pipe(prompt,
                 negative_prompt=negative_prompt,
                 width=512,
                 height=640,
                 guidance_scale=12,
                 num_inference_steps=50).images[0]

image.save("anime_girl.png")

Examples

Below are some examples of images generated using this model:

Anime Girl:

Anime Boy:

Scenery:

License

This model is open access and available to all, with a CreativeML OpenRAIL-M license further specifying rights and usage. The CreativeML OpenRAIL License specifies:

  1. You can't use the model to deliberately produce nor share illegal or harmful outputs or content
  2. The authors claims no rights on the outputs you generate, you are free to use them and are accountable for their use which must not go against the provisions set in the license
  3. You may re-distribute the weights and use the model commercially and/or as a service. If you do, please be aware you have to include the same use restrictions as the ones in the license and share a copy of the CreativeML OpenRAIL-M to all your users (please read the license entirely and carefully) Please read the full license here

Announcement

For (unofficial) continuation of this model, please visit andite/anything-v4.0. I am aware that the repo exists because I am literally the one who (accidentally) gave the idea to publish his fine-tuned model (andite/yohan-diffusion) as a base and merged it with many mysterious model, "hey, let's call it 'Anything V4.0'", because the quality is quite similar to Anything V3 but upgraded.

I also wanted to tell you something. I had a plan to remove/make private one of each repo named "Anything V3":

Because there are two versions now and I'm late to realize this mysterious non-sense model is already polluted Huggingface Trending for so long, and now when the new repo comes out it is also there. I feel guilty everytime this model is in trending leaderboard.

I prefer to delete/make private this one and let us slowly move to Linaqruf/anything-v3-better-vae with better repo management and a better VAE included in the model.

Please share your thoughts in this #133 discussion about whether I should delete this repo or another one, or maybe both of them.

Thanks, Linaqruf.


Anything V3

Welcome to Anything V3 - a latent diffusion model for weebs. This model is intended to produce high-quality, highly detailed anime style with just a few prompts. Like other anime-style Stable Diffusion models, it also supports danbooru tags to generate images.

e.g. 1girl, white hair, golden eyes, beautiful eyes, detail, flower meadow, cumulonimbus clouds, lighting, detailed sky, garden

Gradio

We support a Gradio Web UI to run Anything-V3.0:

Open in Spaces

🧨 Diffusers

This model can be used just like any other Stable Diffusion model. For more information, please have a look at the Stable Diffusion.

You can also export the model to ONNX, MPS and/or [FL

From the published model card. Full card on the HuggingFace links in the sidebar.

Using it via the API

Call it like any OpenAI endpoint

Once AxForge deploys anything-preservation for you, it answers on the OpenAI-compatible API — the same base URL and keys as every other model. (anything-preservation below is illustrative; you get the exact model name on deployment.)

$ curl -sS https://api.axforge.ai/v1/images/generations \
  -H "Authorization: Bearer $AXFORGE_API_KEY" \
  -H "Content-Type: application/json" \
  -d '{"model":"anything-preservation","prompt":"a red bicycle","size":"1024x1024"}'

Create an account — your API key is available in the console. 3M free tokens every 30 days with every new account.

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