TryOnGAN: body-aware try-on via layered interpolation
Kathleen M. Lewis, Srivatsan Varadharajan, Ira Kemelmacher-Shlizerman
Abstract
Given a pair of images---target person and garment on another person---we automatically generate the target person in the given garment. Previous methods mostly focused on texture transfer via paired data training, while overlooking body shape deformations, skin color, and seamless blending of garment with the person. This work focuses on those three components, while also not requiring paired data training. We designed a pose conditioned StyleGAN2 architecture with a clothing segmentation branch that is trained on images of people wearing garments. Once trained, we propose a new layered latent space interpolation method that allows us to preserve and synthesize skin color and target body shape while transferring the garment from a different person. We demonstrate results on high resolution 512 × 512 images, and extensively compare to state of the art in try-on on both latent space generated and real images.
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Install the CLIlune papers fulltext e3a084fc-1958-4abd-a605-dac9304ab0a5Cited by top-tier papers32
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Builds on8
- Towards Multi-Pose Guided Virtual Try-On NetworkHaoye Dong, Xiaodan Liang, Xiaohui Shen, Bochao Wang et al.ICCV 2019 · 226 citations
- Towards Photo-Realistic Virtual Try-On by Adaptively Generating↔Preserving Image ContentHan Yang, Ruimao Zhang, Xiaobao Guo, Wei Liu et al.CVPR 2020
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- Controllable Person Image Synthesis With Attribute-Decomposed GANYifang Men, Yiming Mao, Yuning Jiang, Wei-Ying Ma et al.CVPR 2020
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