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A Hierarchical Representation Network for Accurate and Detailed Face Reconstruction from In-The-Wild Images

About

Limited by the nature of the low-dimensional representational capacity of 3DMM, most of the 3DMM-based face reconstruction (FR) methods fail to recover high-frequency facial details, such as wrinkles, dimples, etc. Some attempt to solve the problem by introducing detail maps or non-linear operations, however, the results are still not vivid. To this end, we in this paper present a novel hierarchical representation network (HRN) to achieve accurate and detailed face reconstruction from a single image. Specifically, we implement the geometry disentanglement and introduce the hierarchical representation to fulfill detailed face modeling. Meanwhile, 3D priors of facial details are incorporated to enhance the accuracy and authenticity of the reconstruction results. We also propose a de-retouching module to achieve better decoupling of the geometry and appearance. It is noteworthy that our framework can be extended to a multi-view fashion by considering detail consistency of different views. Extensive experiments on two single-view and two multi-view FR benchmarks demonstrate that our method outperforms the existing methods in both reconstruction accuracy and visual effects. Finally, we introduce a high-quality 3D face dataset FaceHD-100 to boost the research of high-fidelity face reconstruction. The project homepage is at https://younglbw.github.io/HRN-homepage/.

Biwen Lei, Jianqiang Ren, Mengyang Feng, Miaomiao Cui, Xuansong Xie• 2023

Related benchmarks

TaskDatasetResultRank
3D Face ReconstructionREALY (frontal-view)
Overall Error1.537
34
Single-view 3D face reconstructionREALY-S side-view
NMSE (All, Avg)1.468
24
3D Face Geometry ReconstructionREALY (test)
Nose Error1.722
10
3D Face ReconstructionMead
R Eye Error73.31
9
Single-view 3D face reconstructionFaceScape wild
CD2.91
7
Single-view 3D face reconstructionREALY-F frontal-view
NMSE1.537
7
Single-view 3D face reconstructionFaceScape lab
Chamfer Distance3.67
7
Face UV Texture RecoveryFFHQ
CLIP-I83.27
4
Face UV Texture RecoveryCelebAMask-HQ
CLIP-I0.8259
4
Face UV Texture RecoveryLPFF
CLIP-I0.7368
4
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