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Stable Diffusion web UI

https://github.com/automatic1111/stable-diffusion-webui

Science Score: 64.0%

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Keywords

ai ai-art deep-learning diffusion gradio image-generation image2image img2img pytorch stable-diffusion text2image torch txt2img unstable upscaling web

Keywords from Contributors

transformation cryptocurrencies jax cryptography language-model agents trade embedded huggingface notification
Last synced: 6 months ago · JSON representation ·

Repository

Stable Diffusion web UI

Basic Info
  • Host: GitHub
  • Owner: AUTOMATIC1111
  • License: agpl-3.0
  • Language: Python
  • Default Branch: master
  • Homepage:
  • Size: 34.7 MB
Statistics
  • Stars: 152,596
  • Watchers: 1,124
  • Forks: 28,391
  • Open Issues: 2,399
  • Releases: 0
Topics
ai ai-art deep-learning diffusion gradio image-generation image2image img2img pytorch stable-diffusion text2image torch txt2img unstable upscaling web
Created over 3 years ago · Last pushed 10 months ago
Metadata Files
Readme Changelog License Citation Codeowners

README.md

Stable Diffusion web UI

A web interface for Stable Diffusion, implemented using Gradio library.

Features

Detailed feature showcase with images: - Original txt2img and img2img modes - One click install and run script (but you still must install python and git) - Outpainting - Inpainting - Color Sketch - Prompt Matrix - Stable Diffusion Upscale - Attention, specify parts of text that the model should pay more attention to - a man in a ((tuxedo)) - will pay more attention to tuxedo - a man in a (tuxedo:1.21) - alternative syntax - select text and press Ctrl+Up or Ctrl+Down (or Command+Up or Command+Down if you're on a MacOS) to automatically adjust attention to selected text (code contributed by anonymous user) - Loopback, run img2img processing multiple times - X/Y/Z plot, a way to draw a 3 dimensional plot of images with different parameters - Textual Inversion - have as many embeddings as you want and use any names you like for them - use multiple embeddings with different numbers of vectors per token - works with half precision floating point numbers - train embeddings on 8GB (also reports of 6GB working) - Extras tab with: - GFPGAN, neural network that fixes faces - CodeFormer, face restoration tool as an alternative to GFPGAN - RealESRGAN, neural network upscaler - ESRGAN, neural network upscaler with a lot of third party models - SwinIR and Swin2SR (see here), neural network upscalers - LDSR, Latent diffusion super resolution upscaling - Resizing aspect ratio options - Sampling method selection - Adjust sampler eta values (noise multiplier) - More advanced noise setting options - Interrupt processing at any time - 4GB video card support (also reports of 2GB working) - Correct seeds for batches - Live prompt token length validation - Generation parameters - parameters you used to generate images are saved with that image - in PNG chunks for PNG, in EXIF for JPEG - can drag the image to PNG info tab to restore generation parameters and automatically copy them into UI - can be disabled in settings - drag and drop an image/text-parameters to promptbox - Read Generation Parameters Button, loads parameters in promptbox to UI - Settings page - Running arbitrary python code from UI (must run with --allow-code to enable) - Mouseover hints for most UI elements - Possible to change defaults/mix/max/step values for UI elements via text config - Tiling support, a checkbox to create images that can be tiled like textures - Progress bar and live image generation preview - Can use a separate neural network to produce previews with almost none VRAM or compute requirement - Negative prompt, an extra text field that allows you to list what you don't want to see in generated image - Styles, a way to save part of prompt and easily apply them via dropdown later - Variations, a way to generate same image but with tiny differences - Seed resizing, a way to generate same image but at slightly different resolution - CLIP interrogator, a button that tries to guess prompt from an image - Prompt Editing, a way to change prompt mid-generation, say to start making a watermelon and switch to anime girl midway - Batch Processing, process a group of files using img2img - Img2img Alternative, reverse Euler method of cross attention control - Highres Fix, a convenience option to produce high resolution pictures in one click without usual distortions - Reloading checkpoints on the fly - Checkpoint Merger, a tab that allows you to merge up to 3 checkpoints into one - Custom scripts with many extensions from community - Composable-Diffusion, a way to use multiple prompts at once - separate prompts using uppercase AND - also supports weights for prompts: a cat :1.2 AND a dog AND a penguin :2.2 - No token limit for prompts (original stable diffusion lets you use up to 75 tokens) - DeepDanbooru integration, creates danbooru style tags for anime prompts - xformers, major speed increase for select cards: (add --xformers to commandline args) - via extension: History tab: view, direct and delete images conveniently within the UI - Generate forever option - Training tab - hypernetworks and embeddings options - Preprocessing images: cropping, mirroring, autotagging using BLIP or deepdanbooru (for anime) - Clip skip - Hypernetworks - Loras (same as Hypernetworks but more pretty) - A separate UI where you can choose, with preview, which embeddings, hypernetworks or Loras to add to your prompt - Can select to load a different VAE from settings screen - Estimated completion time in progress bar - API - Support for dedicated inpainting model by RunwayML - via extension: Aesthetic Gradients, a way to generate images with a specific aesthetic by using clip images embeds (implementation of https://github.com/vicgalle/stable-diffusion-aesthetic-gradients) - Stable Diffusion 2.0 support - see wiki for instructions - Alt-Diffusion support - see wiki for instructions - Now without any bad letters! - Load checkpoints in safetensors format - Eased resolution restriction: generated image's dimensions must be a multiple of 8 rather than 64 - Now with a license! - Reorder elements in the UI from settings screen - Segmind Stable Diffusion support

Installation and Running

Make sure the required dependencies are met and follow the instructions available for: - NVidia (recommended) - AMD GPUs. - Intel CPUs, Intel GPUs (both integrated and discrete) (external wiki page) - Ascend NPUs (external wiki page)

Alternatively, use online services (like Google Colab):

Installation on Windows 10/11 with NVidia-GPUs using release package

  1. Download sd.webui.zip from v1.0.0-pre and extract its contents.
  2. Run update.bat.
  3. Run run.bat. > For more details see Install-and-Run-on-NVidia-GPUs

Automatic Installation on Windows

  1. Install Python 3.10.6 (Newer version of Python does not support torch), checking "Add Python to PATH".
  2. Install git.
  3. Download the stable-diffusion-webui repository, for example by running git clone https://github.com/AUTOMATIC1111/stable-diffusion-webui.git.
  4. Run webui-user.bat from Windows Explorer as normal, non-administrator, user.

Automatic Installation on Linux

  1. Install the dependencies: bash # Debian-based: sudo apt install wget git python3 python3-venv libgl1 libglib2.0-0 # Red Hat-based: sudo dnf install wget git python3 gperftools-libs libglvnd-glx # openSUSE-based: sudo zypper install wget git python3 libtcmalloc4 libglvnd # Arch-based: sudo pacman -S wget git python3 If your system is very new, you need to install python3.11 or python3.10: ```bash # Ubuntu 24.04 sudo add-apt-repository ppa:deadsnakes/ppa sudo apt update sudo apt install python3.11

Manjaro/Arch

sudo pacman -S yay yay -S python311 # do not confuse with python3.11 package

Only for 3.11

Then set up env variable in launch script

export python_cmd="python3.11"

or in webui-user.sh

python_cmd="python3.11" 2. Navigate to the directory you would like the webui to be installed and execute the following command: bash wget -q https://raw.githubusercontent.com/AUTOMATIC1111/stable-diffusion-webui/master/webui.sh Or just clone the repo wherever you want: bash git clone https://github.com/AUTOMATIC1111/stable-diffusion-webui ```

  1. Run webui.sh.
  2. Check webui-user.sh for options. ### Installation on Apple Silicon

Find the instructions here.

Contributing

Here's how to add code to this repo: Contributing

Documentation

The documentation was moved from this README over to the project's wiki.

For the purposes of getting Google and other search engines to crawl the wiki, here's a link to the (not for humans) crawlable wiki.

Credits

Licenses for borrowed code can be found in Settings -> Licenses screen, and also in html/licenses.html file.

  • Stable Diffusion - https://github.com/Stability-AI/stablediffusion, https://github.com/CompVis/taming-transformers, https://github.com/mcmonkey4eva/sd3-ref
  • k-diffusion - https://github.com/crowsonkb/k-diffusion.git
  • Spandrel - https://github.com/chaiNNer-org/spandrel implementing
    • GFPGAN - https://github.com/TencentARC/GFPGAN.git
    • CodeFormer - https://github.com/sczhou/CodeFormer
    • ESRGAN - https://github.com/xinntao/ESRGAN
    • SwinIR - https://github.com/JingyunLiang/SwinIR
    • Swin2SR - https://github.com/mv-lab/swin2sr
  • LDSR - https://github.com/Hafiidz/latent-diffusion
  • MiDaS - https://github.com/isl-org/MiDaS
  • Ideas for optimizations - https://github.com/basujindal/stable-diffusion
  • Cross Attention layer optimization - Doggettx - https://github.com/Doggettx/stable-diffusion, original idea for prompt editing.
  • Cross Attention layer optimization - InvokeAI, lstein - https://github.com/invoke-ai/InvokeAI (originally http://github.com/lstein/stable-diffusion)
  • Sub-quadratic Cross Attention layer optimization - Alex Birch (https://github.com/Birch-san/diffusers/pull/1), Amin Rezaei (https://github.com/AminRezaei0x443/memory-efficient-attention)
  • Textual Inversion - Rinon Gal - https://github.com/rinongal/textual_inversion (we're not using his code, but we are using his ideas).
  • Idea for SD upscale - https://github.com/jquesnelle/txt2imghd
  • Noise generation for outpainting mk2 - https://github.com/parlance-zz/g-diffuser-bot
  • CLIP interrogator idea and borrowing some code - https://github.com/pharmapsychotic/clip-interrogator
  • Idea for Composable Diffusion - https://github.com/energy-based-model/Compositional-Visual-Generation-with-Composable-Diffusion-Models-PyTorch
  • xformers - https://github.com/facebookresearch/xformers
  • DeepDanbooru - interrogator for anime diffusers https://github.com/KichangKim/DeepDanbooru
  • Sampling in float32 precision from a float16 UNet - marunine for the idea, Birch-san for the example Diffusers implementation (https://github.com/Birch-san/diffusers-play/tree/92feee6)
  • Instruct pix2pix - Tim Brooks (star), Aleksander Holynski (star), Alexei A. Efros (no star) - https://github.com/timothybrooks/instruct-pix2pix
  • Security advice - RyotaK
  • UniPC sampler - Wenliang Zhao - https://github.com/wl-zhao/UniPC
  • TAESD - Ollin Boer Bohan - https://github.com/madebyollin/taesd
  • LyCORIS - KohakuBlueleaf
  • Restart sampling - lambertae - https://github.com/Newbeeer/diffusionrestartsampling
  • Hypertile - tfernd - https://github.com/tfernd/HyperTile
  • Initial Gradio script - posted on 4chan by an Anonymous user. Thank you Anonymous user.
  • (You)

Owner

  • Login: AUTOMATIC1111
  • Kind: user

Citation (CITATION.cff)

cff-version: 1.2.0
message: "If you use this software, please cite it as below."
authors:
  - given-names: AUTOMATIC1111
title: "Stable Diffusion Web UI"
date-released: 2022-08-22
url: "https://github.com/AUTOMATIC1111/stable-diffusion-webui"

Committers

Last synced: 9 months ago

All Time
  • Total Commits: 5,671
  • Total Committers: 618
  • Avg Commits per committer: 9.176
  • Development Distribution Score (DDS): 0.66
Past Year
  • Commits: 128
  • Committers: 23
  • Avg Commits per committer: 5.565
  • Development Distribution Score (DDS): 0.602
Top Committers
Name Email Commits
AUTOMATIC 1****c@g****m 1,927
w-e-w 4****w 311
DepFA 3****r 164
Aarni Koskela a****x@i****i 155
catboxanon 1****n 129
Kohaku-Blueleaf 5****f 109
missionfloyd m****d 83
C43H66N12O12S2 3****2 81
brkirch b****h 77
Andray l****y@g****m 66
Vladimir Mandic m****0@l****m 57
AngelBottomless 3****h 55
space-nuko 2****o 53
papuSpartan m****u@g****m 45
yfszzx y****x@g****m 44
v0xie 2****e 44
Dynamic b****e@n****m 41
dtlnor d****r@h****m 41
Vladimir Repin 3****n 38
Danil Boldyrev d****3@g****m 36
Muhammad Rizqi Nur r****0@g****m 36
d8ahazard d****d@g****m 36
invincibledude 36
CodeHatchling s****e@c****m 34
drhead 1****d 33
timntorres t****s@g****m 30
Jabasukuriputo Wang w****w 29
Sakura-Luna 5****a 28
EllangoK k****7@g****m 28
batvbs b****s@q****m 28
and 588 more...

Issues and Pull Requests

Last synced: 6 months ago

All Time
  • Total issues: 1,126
  • Total pull requests: 914
  • Average time to close issues: 28 days
  • Average time to close pull requests: about 1 month
  • Total issue authors: 946
  • Total pull request authors: 283
  • Average comments per issue: 3.38
  • Average comments per pull request: 1.67
  • Merged pull requests: 368
  • Bot issues: 0
  • Bot pull requests: 0
Past Year
  • Issues: 220
  • Pull requests: 308
  • Average time to close issues: 3 days
  • Average time to close pull requests: 7 days
  • Issue authors: 210
  • Pull request authors: 91
  • Average comments per issue: 0.87
  • Average comments per pull request: 1.05
  • Merged pull requests: 58
  • Bot issues: 0
  • Bot pull requests: 0
Top Authors
Issue Authors
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Pull Request Authors
  • w-e-w (156)
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Pull Request Labels
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Dependencies

requirements.txt pypi
  • Pillow *
  • basicsr *
  • diffusers *
  • gfpgan *
  • gradio *
  • invisible-watermark *
  • numpy *
  • omegaconf *
  • pytorch_lightning *
  • realesrgan *
  • torch *
  • transformers *
requirements_versions.txt pypi
  • Pillow ==9.2.0
  • basicsr ==1.3.5
  • basicsr ==1.4.1
  • gfpgan *
  • gradio ==3.2
  • numpy ==1.22.0
  • omegaconf ==2.1.1
  • pytorch_lightning ==1.7.2
  • realesrgan ==0.2.5.0
  • torch *
  • transformers ==4.19.2
.github/workflows/on_pull_request.yaml actions
  • actions/checkout v3 composite
  • actions/setup-node v3 composite
  • actions/setup-python v4 composite
.github/workflows/run_tests.yaml actions
  • actions/checkout v3 composite
  • actions/setup-python v4 composite
  • actions/upload-artifact v3 composite
.github/workflows/warns_merge_master.yml actions
package.json npm
  • eslint ^8.40.0 development
pyproject.toml pypi
requirements-test.txt pypi
  • pytest * test
  • pytest-base-url * test
  • pytest-cov * test
requirements_npu.txt pypi
  • cloudpickle *
  • decorator *
  • synr ==0.5.0
  • tornado *