Normalized Avatar Synthesis Using StyleGAN and Perceptual Refinement
Huiwen Luo, Koki Nagano, Han-Wei Kung, Qingguo Xu, Zejian Wang, Lingyu Wei, Liwen Hu, Hao Li
摘要
We introduce a highly robust GAN-based framework for digitizing a normalized 3D avatar of a person from a single unconstrained photo. While the input image can be of a smiling person or taken in extreme lighting conditions, our method can reliably produce a high-quality textured model of a person’s face in neutral expression and skin textures under diffuse lighting condition. Cutting-edge 3D face reconstruction methods use non-linear morphable face models combined with GAN-based decoders to capture the likeness and details of a person but fail to produce neutral head models with unshaded albedo textures which is critical for creating relightable and animation-friendly avatars for integration in virtual environments. The key challenges for existing methods to work is the lack of training and ground truth data containing normalized 3D faces. We propose a two-stage approach to address this problem. First, we adopt a highly robust normalized 3D face generator by embedding a non-linear morphable face model into a StyleGAN2 network. This allows us to generate detailed but normalized facial assets. This inference is then followed by a perceptual refinement step that uses the generated assets as regularization to cope with the limited available training samples of normalized faces. We further introduce a Normalized Face Dataset, which consists of a combination photogrammetry scans, carefully selected photographs, and generated fake people with neutral expressions in diffuse lighting conditions. While our prepared dataset contains two orders of magnitude less subjects than cutting edge GAN-based 3D facial reconstruction methods, we show that it is possible to produce high-quality normalized face models for very challenging unconstrained input images, and demonstrate superior performance to the current state-of-the-art.
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引用它的顶会 Paper23
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- 3D Facial Expressions through Analysis-by-Neural-SynthesisGeorge Retsinas, Panagiotis Paraskevas Filntisis, Radek Danecek, Victoria Fernández Abrevaya 等CVPR 2024 · 被引用 26 次
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它引用的顶会 Paper13
- Image2StyleGAN: How to Embed Images Into the StyleGAN Latent Space?Rameen Abdal, Yipeng Qin, Peter WonkaICCV 2019 · 被引用 1,195 次
- Probabilistic Face EmbeddingsYichun Shi, Anil K. JainICCV 2019 · 被引用 362 次
- Photo-Realistic Facial Details Synthesis From Single ImageAnpei Chen, Zhang Chen, Guli Zhang, Kenny Mitchell 等ICCV 2019 · 被引用 113 次
- A Decoupled 3D Facial Shape Model by Adversarial TrainingVictoria Fernández Abrevaya, Adnane Boukhayma, Stefanie Wuhrer, Edmond BoyerICCV 2019 · 被引用 36 次
- Image2StyleGAN++: How to Edit the Embedded Images?Rameen Abdal, Yipeng Qin, Peter WonkaCVPR 2020
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