Papers › Stylized Face Sketch Extraction via Generative Prior with Limited Data

Stylized Face Sketch Extraction via Generative Prior with Limited Data

17 Mar 2024arXiv:2403.11263archive 2025-07-28

Kwan Yun, Kwanggyoon Seo, Chang Wook Seo, Soyeon Yoon, Seongcheol Kim, Soohyun Ji, Amirsaman Ashtari, Junyong Noh

Facial sketches are both a concise way of showing the identity of a person and a means to express artistic intention. While a few techniques have recently emerged that allow sketches to be extracted in different styles, they typically rely on a large amount of data that is difficult to obtain. Here, we propose StyleSketch, a method for extracting high-resolution stylized sketches from a face image. Using the rich semantics of the deep features from a pretrained StyleGAN, we are able to train a sketch generator with 16 pairs of face and the corresponding sketch images. The sketch generator utilizes part-based losses with two-stage learning for fast convergence during training for high-quality sketch extraction. Through a set of comparisons, we show that StyleSketch outperforms existing state-of-the-art sketch extraction methods and few-shot image adaptation methods for the task of extracting high-resolution abstract face sketches. We further demonstrate the versatility of StyleSketch by extending its use to other domains and explore the possibility of semantic editing. The project page can be found in https://kwanyun.github.io/stylesketch_project.

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Code

kwanyun/StyleSketch officialmentioned on GitHubpytorch report

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Tasks

Face Sketch Synthesis

Datasets

Introduced by this paper, per the archive.

SKSF-A

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Face Sketch Synthesis SKSF-A StyleSketch LPIPS 0.1772 #1 of 1 Archive leaderboard report

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Methods

Adaptive Instance NormalizationConvolutionDense ConnectionsFeedforward NetworkR1 RegularizationSETStyleGAN

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