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Decensoring Hentai with Deep Neural Networks

License: GNU Affero General Public License v3.0

Python 96.03% Dockerfile 3.42% Shell 0.55%

deepcreampy's Introduction

DeepCreamPy

Decensoring Hentai with Deep Neural Networks. Formerly named DeepMindBreak.

A deep learning-based tool to automatically replace censored artwork in hentai with plausible reconstructions.

The user specifies the censored regions in each image by coloring those regions green in a separate image editing program like GIMP or Photoshop. A neural network handles the hard part of filling in the censored regions.

DeepCreamPy has a pre-built binary for Windows 64-bit available here. DeepCreamPy works on Windows, Mac, and Linux.

Censored, decensored

Features

  • Decensoring images of ANY size
  • Decensoring censors of ANY shape (e.g. bunch of black lines, pink hearts, etc.)
  • Higher quality decensors
  • Support for mosaic decensors (still a WIP and not very usable)
  • User interface (still a WIP and not usable)

Limitations

The decensorship is intended to work on color hentai images that have minor to moderate censorship of the penis or vagina. If a vagina or penis is completely censored out, decensoring will be ineffective.

It does NOT work with:

  • Black and white/Monochrome image
  • Hentai containing screentones (e.g. printed hentai)
  • Real life porn
  • Censorship of nipples
  • Censorship of anus
  • Animated gifs/videos

Table of Contents

Setup:

Usage:

Miscellaneous:

To do

  • Finish the user interface (sometime in November)
  • Update model with better quality data (sometime in November)
  • Add support for black and white images
  • Add error log

Contributions are welcome! Special thanks to Smethan, harjitmoe, itsVale, StartleStars, and SoftArmpit!

License

This project is licensed under GNU Affero General Public License v3.0.

See LICENSE.txt for more information about the license.

Acknowledgements

Example mermaid image by Shurajo & AVALANCHE Game Studio under CC BY 3.0 License. The example image is modified from the original, which can be found here.

Neural network code is modified from MathiasGruber's project Partial Convolutions for Image Inpainting using Keras, which is an unofficial implementation of the paper Image Inpainting for Irregular Holes Using Partial Convolutions. Partial Convolutions for Image Inpainting using Keras is licensed under the MIT license.

User interface code is modified from Packt's project Tkinter GUI Application Development Blueprints - Second Edition. Tkinter GUI Application Development Blueprints - Second Edition is licensed under the MIT license.

Data is modified from gwern's project Danbooru2017: A Large-Scale Crowdsourced and Tagged Anime Illustration Dataset.

See ACKNOWLEDGEMENTS.md for full license text of these projects.

Donations

If you like the work I do, you can donate to me via Paypal: Donate

deepcreampy's People

Contributors

0xb8 avatar deeppomf avatar deniszh avatar imgbotapp avatar smethan avatar startlestars avatar vbe0201 avatar

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