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A Latent Transformer for Disentangled Face Editing in Images and Videos

  • Institut Polytechnique de Paris
  • InterDigital RD France

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Résumé

High quality facial image editing is a challenging problem in the movie post-production industry, requiring a high degree of control and identity preservation. Previous works that attempt to tackle this problem may suffer from the entanglement of facial attributes and the loss of the person's identity. Furthermore, many algorithms are limited to a certain task. To tackle these limitations, we propose to edit facial attributes via the latent space of a StyleGAN generator, by training a dedicated latent transformation network and incorporating explicit disentanglement and identity preservation terms in the loss function. We further introduce a pipeline to generalize our face editing to videos. Our model achieves a disentangled, controllable, and identity-preserving facial attribute editing, even in the challenging case of real (i.e., non-synthetic) images and videos. We conduct extensive experiments on image and video datasets and show that our model outperforms other state-of-the-art methods in visual quality and quantitative evaluation. Source codes are available at https://github.com/InterDigitalInc/latent-transformer.

langue originaleAnglais
titreProceedings - 2021 IEEE/CVF International Conference on Computer Vision, ICCV 2021
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages13769-13778
Nombre de pages10
ISBN (Electronique)9781665428125
Les DOIs
étatPublié - 1 janv. 2021
Evénement18th IEEE/CVF International Conference on Computer Vision, ICCV 2021 - Virtual, Online, Canada
Durée: 11 oct. 202117 oct. 2021

Série de publications

NomProceedings of the IEEE International Conference on Computer Vision
ISSN (imprimé)1550-5499

Une conférence

Une conférence18th IEEE/CVF International Conference on Computer Vision, ICCV 2021
Pays/TerritoireCanada
La villeVirtual, Online
période11/10/2117/10/21

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