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Cross-Domain and Disentangled Face Manipulation with 3D Guidance

  • Can Wang
  • , Menglei Chai
  • , Mingming He
  • , Dongdong Chen
  • , Jing Liao*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Face image manipulation via three-dimensional guidance has been widely applied in various interactive scenarios due to its semantically-meaningful understanding and user-friendly controllability. However, existing 3D-morphable-model-based manipulation methods are not directly applicable to out-of-domain faces, such as non-photorealistic paintings, cartoon portraits, or even animals, mainly due to the formidable difficulties in building the model for each specific face domain. To overcome this challenge, we propose, as far as we know, the first method to manipulate faces in arbitrary domains using human 3DMM. This is achieved through two major steps: 1) disentangled mapping from 3DMM parameters to the latent space embedding of a pre-trained StyleGAN2 [1] that guarantees disentangled and precise controls for each semantic attribute; and 2) cross-domain adaptation that bridges domain discrepancies and makes human 3DMM applicable to out-of-domain faces by enforcing a consistent latent space embedding. Experiments and comparisons demonstrate the superiority of our high-quality semantic manipulation method on a variety of face domains with all major 3D facial attributes controllable – pose, expression, shape, albedo, and illumination. Moreover, we develop an intuitive editing interface to support user-friendly control and instant feedback. Our project page is https://cassiepython.github.io/cddfm3d/index.html. © 2022 IEEE.
Original languageEnglish
Pages (from-to)2053-2066
JournalIEEE Transactions on Visualization and Computer Graphics
Volume29
Issue number4
Online published4 Jan 2022
DOIs
Publication statusPublished - Apr 2023

Research Keywords

  • 3D Morphable Model
  • Aerospace electronics
  • Codes
  • Disentanglement
  • Domain Adaptation
  • Face Image Manipulation
  • Faces
  • Lighting
  • Semantics
  • Solid modeling
  • StyleGAN2
  • Three-dimensional displays

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