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+ ---
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+ license: apache-2.0
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+ tags:
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+ - stylegan2
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+ - image-generation
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+ ---
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+
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+ # AniCharaGAN: Anime Character Generation with StyleGAN2
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+
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+ [![GitHub Repo stars](https://img.shields.io/github/stars/eugenesiow/practical-ml?style=social)](https://github.com/eugenesiow/practical-ml)
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+
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+ This model uses the awesome lucidrains’s [stylegan2-pytorch](https://github.com/lucidrains/stylegan2-pytorch) library to train a model on a private anime character dataset to generate full-body 256x256 female anime characters.
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+
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+ Here are some samples:
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+
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+ ![Samples of anime characters and styles generated by the model](images/samples1.jpg "Samples of anime characters and styles generated by the model")
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+
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+ ## Model description
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+ The model generates 256x256, square, white background, full-body anime characters. It is trained using [stylegan2-pytorch](https://github.com/lucidrains/stylegan2-pytorch). It is trained to 150 epochs.
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+
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+ ## Intended uses & limitations
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+ You can use the model for generating anime characters and than use a super resolution library like [super_image](https://github.com/eugenesiow/super-image) to upscale.
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+
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+ ### How to use
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+
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+ [![Open In Colab](https://colab.research.google.com/assets/colab-badge.svg)](https://colab.research.google.com/github/eugenesiow/practical-ml/blob/master/notebooks/Anime_Character_Generation_with_StyleGAN2.ipynb "Open in Colab")
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+
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+ Install the dependencies:
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+ ```bash
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+ pip install -q stylegan2_pytorch==1.5.10
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+ ```
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+ Here is how to generate images:
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+ ```python
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+ import torch
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+ from torchvision.utils import save_image
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+ from stylegan2_pytorch import ModelLoader
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+ from pathlib import Path
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+
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+ Path('./models/ani-chara-gan/').mkdir(parents=True, exist_ok=True)
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+ torch.hub.download_url_to_file('https://huggingface.co/eugenesiow/ani-chara-gan/resolve/main/model.pt',
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+ './models/ani-chara-gan/model_150.pt')
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+ torch.hub.download_url_to_file('https://huggingface.co/eugenesiow/ani-chara-gan/resolve/main/.config.json',
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+ './models/ani-chara-gan/.config.json')
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+
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+ loader = ModelLoader(
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+ base_dir = './', name = 'ani-chara-gan'
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+ )
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+
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+ noise = torch.randn(1, 256).cuda() # noise
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+ styles = loader.noise_to_styles(noise, trunc_psi = 0.7) # pass through mapping network
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+ images = loader.styles_to_images(styles) # call the generator on intermediate style vectors
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+
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+ save_image(images, './sample.jpg')
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+ ```
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+
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+ ## BibTeX entry and citation info
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+
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+ The model is part of the [practical-ml](https://github.com/eugenesiow/practical-ml) repository.
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+
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+ [![GitHub Repo stars](https://img.shields.io/github/stars/eugenesiow/practical-ml?style=social)](https://github.com/eugenesiow/practical-ml)
images/samples1.jpg ADDED