ru-dalle
naver-webtoon-faces
ru-dalle | naver-webtoon-faces | |
---|---|---|
50 | 4 | |
1,639 | 290 | |
-0.3% | - | |
0.0 | 1.8 | |
over 1 year ago | almost 3 years ago | |
Jupyter Notebook | Jupyter Notebook | |
Apache License 2.0 | MIT License |
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ru-dalle
- I trained a custom AI model for fakemon outputs. Feel free to use them for inspiration! No credit needed.
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I trained an AI model to help me design fakebadge concepts. Full album in comments. Please feel free to take these for your own inspiration, too!
It’s a custom trained model, built in rudalle https://github.com/ai-forever/ru-dalle
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Using AI to draft new ideas for legendaries.
It's a custom model, built from rudalle
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SD photorealism to the extreme, is MJ really that better?
ru-dalle has had that feature for quite a while, as it was their first inpainting example notebook:
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2 Google Colab notebooks are available for the large ruDALL-E Kandinsky model (12 billion parameters). The smaller ruDALL-E model has 1.3 billion parameters.
GitHub repo.
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Colab notebook "pharmapsychotic modified rudalle" lets the user choose which of 4 ruDALL-E models to use
Colab notebook. There are actually 5 models, but I doubt the 12B parameter Kandinsky model is actually available per looking at this code.
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Tree in a field.
This was made with a mini version of DALL-E: ruDALL-E
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I trained an AI model to generate images of ancient Roman imperial denarii
Specifically, I fine-tuned ru-DALLE using a dataset consisting of ~1000 images of imperial denarii (ranging from Augustus through Maximinus Thrax) coupled with descriptions of each coin grabbed from OCRE. For example, the obverse description of this coin would be "Head of Augustus, bare, right" and the reverse description would be "Round shield, spear-head, and curved sword".
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New ruDALL-E 1.3 billion parameter model version 3 has been released with ruDALL-E v1.0.0
One way to use the version 3 model is to use this official Colab notebook linked to in the ruDALL-E GitHub repo. I recommend making the changes mentioned in this post. If you want to use the older version 2 model with this Colab notebook, change 'Malevich' to 'Malevich_v2' in line "dalle = get_rudalle_model('Malevich', pretrained=True, fp16=True, device=device)" (relevant source code).
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Preview of ruDALL-E v0.5.0 from the developer
# !pip install rudalle==0.0.1rc8 > /dev/null !pip3 install git+https://github.com/sberbank-ai/ru-dalle.git@feature/new_malevich
naver-webtoon-faces
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[D] Best in style transfer for distributions?
Hi everyone. I am working on a style transfer project inspired by the recent results of toonification projects based on StyleGAN e.g. [1][2].
- Naver Webtoon Faces: dataset and models
- [P] Yet another face cartoonizer w/ a distilled lightweight model
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SwapAE gives pretty satisfying results
project page: https://github.com/bryandlee/naver-webtoon-faces
What are some alternatives?
NeuralTextToImage - Colabs for text prompt steered image generators
pix2pix - Image-to-image translation with conditional adversarial nets
pytorch-seq2seq - Tutorials on implementing a few sequence-to-sequence (seq2seq) models with PyTorch and TorchText.
TargetCLIP - [ECCV 2022] Official PyTorch implementation of the paper Image-Based CLIP-Guided Essence Transfer.
fastai - The fastai deep learning library
pytorch-generative - Easy generative modeling in PyTorch.
ganspace - Discovering Interpretable GAN Controls [NeurIPS 2020]
LLVIP - LLVIP: A Visible-infrared Paired Dataset for Low-light Vision
FinRL-Meta - FinRL-Meta: Dynamic datasets and market environments for FinRL.
SOAT - Official PyTorch repo for StyleGAN of All Trades: Image Manipulation with Only Pretrained StyleGAN.
gpt-3-simple-tutorial - Generate SQL from Natural Language Sentences using OpenAI's GPT-3 Model
poolformer - PoolFormer: MetaFormer Is Actually What You Need for Vision (CVPR 2022 Oral)