SketchHairSalon: Deep Sketch-based Hair Image Synthesis
Chufeng Xiao, Deng Yu, Xiaoguang Han, Youyi Zheng, Hongbo Fu

TL;DR
SketchHairSalon is a deep learning framework that generates realistic hair images directly from freehand sketches, reducing user effort and better capturing complex hair structures through a two-stage process and sketch completion methods.
Contribution
The paper introduces a novel two-stage deep learning approach for sketch-based hair image synthesis, along with new sketch completion techniques and a comprehensive dataset.
Findings
Outperforms existing methods in realism and flexibility.
Enables novice users to create diverse hair images from sketches.
Demonstrates effective capture of complex hair structures.
Abstract
Recent deep generative models allow real-time generation of hair images from sketch inputs. Existing solutions often require a user-provided binary mask to specify a target hair shape. This not only costs users extra labor but also fails to capture complicated hair boundaries. Those solutions usually encode hair structures via orientation maps, which, however, are not very effective to encode complex structures. We observe that colored hair sketches already implicitly define target hair shapes as well as hair appearance and are more flexible to depict hair structures than orientation maps. Based on these observations, we present SketchHairSalon, a two-stage framework for generating realistic hair images directly from freehand sketches depicting desired hair structure and appearance. At the first stage, we train a network to predict a hair matte from an input hair sketch, with an…
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Taxonomy
TopicsGenerative Adversarial Networks and Image Synthesis · Computer Graphics and Visualization Techniques · Advanced Vision and Imaging
MethodsAttentive Walk-Aggregating Graph Neural Network
