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Neural Haircut: Prior-Guided Strand-Based Hair Reconstruction

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Generating realistic human 3D reconstructions using image or video data is essential for various communication and entertainment applications. While existing methods achieved impressive results for body and facial regions, realistic hair modeling still remains challenging due to its high mechanical complexity. This work proposes an approach capable of accurate hair geometry reconstruction at a strand level from a monocular video or multi-view images captured in uncontrolled lighting conditions. Our method has two stages, with the first stage performing joint reconstruction of coarse hair and bust shapes and hair orientation using implicit volumetric representations. The second stage then estimates a strand-level hair reconstruction by reconciling in a single optimization process the coarse volumetric constraints with hair strand and hairstyle priors learned from the synthetic data. To further increase the reconstruction fidelity, we incorporate image-based losses into the fitting process using a new differentiable renderer. The combined system, named Neural Haircut, achieves high realism and personalization of the reconstructed hairstyles.

Vanessa Sklyarova, Jenya Chelishev, Andreea Dogaru, Igor Medvedev, Victor Lempitsky, Egor Zakharov• 2023

Related benchmarks

TaskDatasetResultRank
Hair ReconstructionSynthetic Straight Hair
Precision (1mm/10°)50.2
10
Hair ReconstructionSynthetic Curly Hair
Precision (1mm/10°)20.9
10
3D Hair ReconstructionSynthetic Hair Data Straight Hair (test)
Precision (1mm/10°)0.503
10
3D Hair ReconstructionSynthetic Hair Data Curly Hair (test)
Precision (1mm/10°)0.21
10
Strand ReconstructionSynthetic hair models
Relative Time2.16e+3
4
Surface ReconstructionSynthetic hair models
Relative Time1.08e+3
2
Unconditional 3D Hairstyle Generation3D Hairstyle Dataset
MMD3.15e+4
2
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