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Repository

Basic Info
  • Host: GitHub
  • Owner: nprasad2077
  • License: agpl-3.0
  • Language: Python
  • Default Branch: main
  • Size: 49.2 MB
Statistics
  • Stars: 6
  • Watchers: 2
  • Forks: 1
  • Open Issues: 2
  • Releases: 0
Created over 2 years ago · Last pushed over 2 years ago
Metadata Files
Readme Changelog License Citation Codeowners

README.md

Stable Diffusion web UI

A browser interface based on Gradio library for Stable Diffusion.

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 dimension must be a multiple of 8 rather than 64
  • Now with a license!
  • Reorder elements in the UI from settings screen

Installation and Running

Make sure the required dependencies are met and follow the instructions available for:

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 it's 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

Arch-based:

sudo pacman -S wget git python3 ```

  1. 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

  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.

Owner

  • Name: Nikhil Prasad
  • Login: nprasad2077
  • Kind: user
  • Location: Houston, TX

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"

GitHub Events

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  • Fork event: 1
Last Year
  • Watch event: 7
  • Fork event: 1

Dependencies

.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.txt pypi
  • GitPython *
  • Pillow *
  • accelerate *
  • basicsr *
  • blendmodes *
  • clean-fid *
  • einops *
  • fastapi >=0.90.1
  • gfpgan *
  • gradio ==3.41.2
  • inflection *
  • jsonmerge *
  • kornia *
  • lark *
  • numpy ==1.24.3
  • omegaconf *
  • open-clip-torch *
  • piexif *
  • psutil *
  • pytorch_lightning *
  • realesrgan *
  • requests *
  • resize-right *
  • safetensors *
  • scikit-image >=0.19
  • timm *
  • tomesd *
  • torch *
  • torchdiffeq *
  • torchsde *
  • transformers ==4.30.2
requirements_versions.txt pypi
  • GitPython ==3.1.32
  • Pillow ==9.5.0
  • accelerate ==0.21.0
  • basicsr ==1.4.2
  • blendmodes ==2022
  • clean-fid ==0.1.35
  • einops ==0.4.1
  • fastapi ==0.94.0
  • gfpgan ==1.3.8
  • gradio ==3.41.2
  • httpcore ==0.15
  • inflection ==0.5.1
  • jsonmerge ==1.8.0
  • kornia ==0.6.7
  • lark ==1.1.2
  • numpy ==1.23.5
  • omegaconf ==2.2.3
  • open-clip-torch ==2.20.0
  • piexif ==1.1.3
  • psutil ==5.9.5
  • pytorch_lightning ==1.9.4
  • realesrgan ==0.3.0
  • resize-right ==0.0.2
  • safetensors ==0.3.1
  • scikit-image ==0.21.0
  • timm ==0.9.2
  • tomesd ==0.1.3
  • torch *
  • torchdiffeq ==0.2.3
  • torchsde ==0.2.5
  • transformers ==4.30.2