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title: DragGan - Drag Your GAN - Inversion | |
emoji: 🔄🐉 | |
colorFrom: purple | |
colorTo: pink | |
sdk: gradio | |
python_version: 3.8.17 | |
sdk_version: 3.36.1 | |
app_file: visualizer_drag_gradio_inversion.py | |
pinned: false | |
duplicated_from: DragGan/DragGan-Inversion | |
# Drag Your GAN: Interactive Point-based Manipulation on the Generative Image Manifold | |
https://arxiv.org/abs/2305.10973 | |
https://huggingface.co/DragGan/DragGan-Models | |
<p align="center"> | |
<img src="DragGAN.gif", width="700"> | |
</p> | |
**Figure:** *Drag your GAN.* | |
> **Drag Your GAN: Interactive Point-based Manipulation on the Generative Image Manifold** <br> | |
> Xingang Pan, Ayush Tewari, Thomas Leimkühler, Lingjie Liu, Abhimitra Meka, Christian Theobalt<br> | |
> *SIGGRAPH 2023 Conference Proceedings* | |
## Requirements | |
Please follow the requirements of [https://github.com/NVlabs/stylegan3](https://github.com/NVlabs/stylegan3). | |
## Download pre-trained StyleGAN2 weights | |
To download pre-trained weights, simply run: | |
```sh | |
sh scripts/download_model.sh | |
``` | |
If you want to try StyleGAN-Human and the Landscapes HQ (LHQ) dataset, please download weights from these links: [StyleGAN-Human](https://drive.google.com/file/d/1dlFEHbu-WzQWJl7nBBZYcTyo000H9hVm/view?usp=sharing), [LHQ](https://drive.google.com/file/d/16twEf0T9QINAEoMsWefoWiyhcTd-aiWc/view?usp=sharing), and put them under `./checkpoints`. | |
Feel free to try other pretrained StyleGAN. | |
## Run DragGAN GUI | |
To start the DragGAN GUI, simply run: | |
```sh | |
sh scripts/gui.sh | |
``` | |
This GUI supports editing GAN-generated images. To edit a real image, you need to first perform GAN inversion using tools like [PTI](https://github.com/danielroich/PTI). Then load the new latent code and model weights to the GUI. | |
You can run DragGAN Gradio demo as well: | |
```sh | |
python visualizer_drag_gradio.py | |
``` | |
## Acknowledgement | |
This code is developed based on [StyleGAN3](https://github.com/NVlabs/stylegan3). Part of the code is borrowed from [StyleGAN-Human](https://github.com/stylegan-human/StyleGAN-Human). | |
## License | |
The code related to the DragGAN algorithm is licensed under [CC-BY-NC](https://creativecommons.org/licenses/by-nc/4.0/). | |
However, most of this project are available under a separate license terms: all codes used or modified from [StyleGAN3](https://github.com/NVlabs/stylegan3) is under the [Nvidia Source Code License](https://github.com/NVlabs/stylegan3/blob/main/LICENSE.txt). | |
Any form of use and derivative of this code must preserve the watermarking functionality. | |
## BibTeX | |
```bibtex | |
@inproceedings{pan2023draggan, | |
title={Drag Your GAN: Interactive Point-based Manipulation on the Generative Image Manifold}, | |
author={Pan, Xingang and Tewari, Ayush, and Leimk{\"u}hler, Thomas and Liu, Lingjie and Meka, Abhimitra and Theobalt, Christian}, | |
booktitle = {ACM SIGGRAPH 2023 Conference Proceedings}, | |
year={2023} | |
} | |
``` | |