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Pose and Facial Expression Transfer by using StyleGAN

17 April 2025
Petr Jahoda
Jan Cech
    CVBM
    GAN
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Abstract

We propose a method to transfer pose and expression between face images. Given a source and target face portrait, the model produces an output image in which the pose and expression of the source face image are transferred onto the target identity. The architecture consists of two encoders and a mapping network that projects the two inputs into the latent space of StyleGAN2, which finally generates the output. The training is self-supervised from video sequences of many individuals. Manual labeling is not required. Our model enables the synthesis of random identities with controllable pose and expression. Close-to-real-time performance is achieved.

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@article{jahoda2025_2504.13021,
  title={ Pose and Facial Expression Transfer by using StyleGAN },
  author={ Petr Jahoda and Jan Cech },
  journal={arXiv preprint arXiv:2504.13021},
  year={ 2025 }
}
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