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SoteDiffusion Wuerstchen3

SoteDiffusion Wuerstchen3

4
1
0
#Anime
#Base Model

New version is out: https://civitai.com/models/628865/sotediffusion-v2

Anime finetune of Würstchen V3.

This release is sponsored by fal.ai/grants

Trained on 6M images for 3 epochs using 8x A100 80G GPUs.

This model can be used via API with Fal.AI

For more details: https://fal.ai/models/fal-ai/stable-cascade/sote-diffusion


Please refer to Huggingface for SD.Next UI, Diffusers or UNet models:
https://huggingface.co/Disty0/sotediffusion-wuerstchen3
CivitAI page has only the ComfyUI checkpoint models.

Inference Parameters:

Download the Main model (8.14 GB file):

https://civitai.com/api/download/models/563950?type=Model&format=SafeTensor&size=pruned&fp=fp16


Download the Decoder model (4.24 GB file):

https://civitai.com/api/download/models/563892?type=Model&format=SafeTensor&size=pruned&fp=fp16

Positives:

newest, extremely aesthetic, best quality,

Negatives:

very displeasing, worst quality, monochrome, realistic, oldest, loli,

Main:

Sampler: DDPM or DPMPP 2M with SGM Uniform
CFG: 7
Steps: 30 or 40

Decoder:

Sampler: Euler a Karras
CFG: 1 or 1.2
Steps: 10

Compression: 42 (or 32 to 64)

Resolution: 1024x1536, 2048x1152.

Anything works as long as it's a multiply of 128.

Training:

Software used: Kohya SD-Scripts with Stable Cascade branch.
https://github.com/kohya-ss/sd-scripts/tree/stable-cascade

GPU used: 8x Nvidia A100 80GB
GPU hours: 220

Base

parameters | value

  • amp | bf16

  • weights | fp32

  • save weights | fp16

  • resolution | 1024x1024

  • effective batch size | 128

  • unet learning rate | 1e-5

  • te learning rate | 4e-6

  • optimizer | Adafactor

  • images | 6M

  • epochs | 3

Final

parameters | value

  • amp | bf16

  • weights | fp32

  • save weights | fp16

  • resolution | 1024x1024

  • effective batch size | 128

  • unet learning rate | 4e-6

  • te learning rate | none

  • optimizer | Adafactor

  • images | 120K

  • epochs | 16

Dataset:

GPU used for captioning: 1x Intel ARC A770 16GB
GPU hours: 350

Model used for captioning: SmilingWolf/wd-swinv2-tagger-v3

Model used for text: llava-hf/llava-1.5-7b-hf

Command:

python /mnt/DataSSD/AI/Apps/kohya_ss/sd-scripts/finetune/tag_images_by_wd14_tagger.py --model_dir "/mnt/DataSSD/AI/models/wd14_tagger_model" --repo_id "SmilingWolf/wd-swinv2-tagger-v3" --recursive --remove_underscore --use_rating_tags --character_tags_first --character_tag_expand --append_tags --onnx --caption_separator ", " --general_threshold 0.35 --character_threshold 0.50 --batch_size 4 --caption_extension ".txt" ./


dataset name | total images

  • newest : 1.85M

  • recent : 1.38M

  • mid : 993K

  • early : 566K

  • oldest : 160K

  • pixiv : 344K

  • visual novel cg : 231K

  • anime wallpaper : 105K

  • Total: 5.628.499 images

Note:

  • Smallest size is 1280x600 / 768.000 pixels

  • Deduped based on image similarity using czkawka-cli

  • Around 120K very high quality images got intentionally duplicated 5 times, making the total image count 6.2M


Tags:

Tag Format:

Model is trained with random tag order but this is the order in the dataset if you are interested:

aesthetic tags, quality tags, date tags, custom tags, rating tags, character, series, rest of the tags

Date:

  • newest : 2022 to 2024

  • recent : 2019 to 2021

  • mid : 2015 to 2018

  • early : 2011 to 2014

  • oldest : 2005 to 2010

Aesthetic Tags:

Model used: shadowlilac/aesthetic-shadow-2

  • score > 0.90 : extremely aesthetic

  • score > 0.80 : very aesthetic

  • score > 0.70 : aesthetic

  • score > 0.50 : slightly aesthetic

  • score > 0.40 : not displeasing

  • score > 0.30 : not aesthetic

  • score > 0.25 : slightly displeasing

  • score > 0.10 : displeasing

  • rest of them : very displeasing

Quality Tags:

Model used: https://huggingface.co/hakurei/waifu-diffusion-v1-4/blob/main/models/aes-B32-v0.pth

  • score > 0.980 : best quality

  • score > 0.900 : high quality

  • score > 0.750 : great quality

  • score > 0.500 : medium quality

  • score > 0.250 : normal quality

  • score > 0.125 : bad quality

  • score > 0.025 : low quality

  • rest of them : worst quality

Rating Tags:

  • general

  • sensitive

  • nsfw

  • explicit nsfw

Custom Tags:

  • image boards: date,

  • text: The text says "text",

  • characters: character, series

  • pixiv: art by Display_Name,

  • visual novel cg: Full_VN_Name (short_3_letter_name), visual novel cg,

  • anime wallpaper: date, anime wallpaper,

License

SoteDiffusion models falls under Fair AI Public License 1.0-SD license, which is compatible with Stable Diffusion models’ license. Key points:

  • 1. Modification Sharing: If you modify SoteDiffusion models, you must share both your changes and the original license.

  • 2. Source Code Accessibility: If your modified version is network-accessible, provide a way (like a download link) for others to get the source code. This applies to derived models too.

  • 3. Distribution Terms: Any distribution must be under this license or another with similar rules.

  • 4. Compliance: Non-compliance must be fixed within 30 days to avoid license termination, emphasizing transparency and adherence to open-source values.

Notes: Anything not covered by Fair AI license is inherited from Stability AI Non-Commercial license.

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Notice
2024-03-22
Publish Model
2024-06-10
Update Model Info
Model Details
Type
Checkpoint
Publish Time
2024-06-10
Base Model
Stable Cascade
Version Introduction
  • This release is sponsored by fal.ai/grants

  • Trained on 6M images for 3 epochs using 8x A100 80G GPUs.

License Scope
Model Source: civitai

1. The rights to reposted models belong to original creators.

2. Original creators should contact SeaArt.AI staff through official channels to claim their models. We are committed to protecting every creator's rights. Click to Claim

Creative License Scope
Online Image Generation
Merge
Allow Downloads
Commercial License Scope
Sale or Commercial Use of Generated Images
Resale of Models or Their Sale After Merging
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