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--- |
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license: mit |
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library_name: transformers |
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tags: |
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- image-to-image |
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- lineart |
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inference: false |
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--- |
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# MangaLineExtraction-hf |
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Transformers version of [MangaLineExtraction_PyTorch](https://github.com/ljsabc/MangaLineExtraction_PyTorch). |
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Original repo: https://github.com/ljsabc/MangaLineExtraction_PyTorch |
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## Example |
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```py |
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from PIL import Image |
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import torch |
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from transformers import AutoModel, AutoImageProcessor |
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REPO_NAME = "p1atdev/MangaLineExtraction-hf" |
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model = AutoModel.from_pretrained(REPO_NAME, trust_remote_code=True) |
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processor = AutoImageProcessor.from_pretrained(REPO_NAME, trust_remote_code=True) |
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image = Image.open("./sample.jpg") |
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inputs = processor(image, return_tensors="pt") |
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with torch.no_grad(): |
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outputs = model(inputs.pixel_values) |
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line_image = Image.fromarray(outputs.pixel_values[0].numpy().astype("uint8"), mode="L") |
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line_image.save("./line_image.png") |
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``` |
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|`sample.jpg`|Generated line image| |
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|-|-| |
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|<img src="./images/sample.jpg" width="320px" alt="Source image">|<img src="./images/line_image.png" width="320px" alt="Generated line image">| |
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## Model Details |
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### Model Description |
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This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generated. |
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- **Developed by:** Chengze Li, Xueting Liu, Tien-Tsin Wong |
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- **Converted by:** Plat |
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- **License:** MIT |
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### Model Sources |
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- **Repository:** https://github.com/ljsabc/MangaLineExtraction_PyTorch |
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- **Paper:** https://ttwong12.github.io/papers/linelearn/linelearn.pdf |
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- **Project page:** https://www.cse.cuhk.edu.hk/~ttwong/papers/linelearn/linelearn.html |
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## Citation |
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**BibTeX:** |
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```bibtex |
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@article{li-2017-deep, |
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author = {Chengze Li and Xueting Liu and Tien-Tsin Wong}, |
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title = {Deep Extraction of Manga Structural Lines}, |
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journal = {ACM Transactions on Graphics (SIGGRAPH 2017 issue)}, |
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month = {July}, |
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year = {2017}, |
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volume = {36}, |
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number = {4}, |
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pages = {117:1--117:12}, |
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} |
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``` |