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Traditional Chinese Landscape Painting Dataset

Paper Title: "End-to-End Chinese Landscape Painting Creation Using Generative Adversarial Networks"
ArXiv: https://arxiv.org/abs/2011.05552
Abstract:
Current GAN-based art generation methods produce unoriginal artwork due to their dependence on conditional input. Here, we propose Sketch-And-Paint GAN (SAPGAN), the first model which generates Chinese landscape paintings from end to end, without conditional input. SAPGAN is composed of two GANs: SketchGAN for generation of edge maps, and PaintGAN for subsequent edge-to-painting translation. Our model is trained on a new dataset of traditional Chinese landscape paintings never before used for generative research. A 242-person Visual Turing Test study reveals that SAPGAN paintings are mistaken as human artwork with 55% frequency, significantly outperforming paintings from baseline GANs. Our work lays a groundwork for truly machine-original art generation.

Sketch-And-Paint GAN, compared with baseline models: Alt Text


Here, we provide the dataset used to train our Sketch-And-Paint GAN model. The dataset consists of 2,192 high-quality traditional Chinese landscape paintings (**山水画). All paintings are sized 512x512, from the following sources:

For more details about dataset collection methodology, please see the paper.

Dataset Samples:
Alt Text


Please cite the paper if you choose to use this dataset for your research.

@misc{xue2020endtoend,
      title={End-to-End Chinese Landscape Painting Creation Using Generative Adversarial Networks}, 
      author={Alice Xue},
      year={2020},
      eprint={2011.05552},
      archivePrefix={arXiv},
      primaryClass={cs.CV}
}

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chinese-landscape-painting-dataset's Issues

This project is a very exciting research, can we talk about using it in our website?

Hi Alice,
Your paper is a great job for Chinese traditional art. I am very exciting to found this paper.
We have a public website of Chinese art, called 中华珍宝馆(http://ltfc.net), and host about 20T Chinese traditional art data. Our APP(Apple store: 中华珍宝馆) is widely used by many art student in china.
Can we talk about the possibility of using your research in our product? Or maybe we can working together to build some more great ML/DL tools for Chines traditional art?
Sorry for contact you with this, I can't find your contact info in public. If you can provide some help, please let me know, or mail me([email protected]).

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