Deep Style Transfer for Line Drawings
Xueting Liu, Wenliang Wu, Huisi Wu, Zhenkun Wen
Abstract
Line drawings are frequently used to illustrate ideas and concepts in digital documents and presentations. To compose a line drawing, it is common for users to retrieve multiple line drawings from the Internet and combine them as one image. However, different line drawings may have different line styles and are visually inconsistent when put together. In order that the line drawings can have consistent looks, in this paper, we make the first attempt to perform style transfer for line drawings. The key of our design lies in the fact that centerline plays a very important role in preserving line topology and extracting style features. With this finding, we propose to formulate the style transfer problem as a centerline stylization problem and solve it via a novel style-guided image-to-image translation network. Results and statistics show that our method significantly outperforms the existing methods both visually and quantitatively.
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- Image2StyleGAN: How to Embed Images Into the StyleGAN Latent Space?Rameen Abdal, Yipeng Qin, Peter WonkaICCV 2019 · 1,195 citations
- Content and Style Disentanglement for Artistic Style TransferDmytro Kotovenko, Artsiom Sanakoyeu, Sabine Lang, Björn OmmerICCV 2019 · 187 citations
- Multimodal Style Transfer via Graph CutsYulun Zhang, Chen Fang, Yilin Wang, Zhaowen Wang et al.ICCV 2019 · 92 citations
- FET-GAN: Font and Effect Transfer via K-shot Adaptive Instance NormalizationWei Li, Yongxing He, Yanwei Qi, Zejian Li et al.AAAI 2020 · 33 citations
- Collaborative Distillation for Ultra-Resolution Universal Style TransferHuan Wang, Yijun Li, Yuehai Wang, Haoji Hu et al.CVPR 2020
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