HairNeRF: Geometry-Aware Image Synthesis for Hairstyle Transfer
Seunggyu Chang, Gihoon Kim, Hayeon Kim
摘要
We propose a novel hairstyle transferred image synthesis method considering the underlying head geometry of two input images. In traditional GAN-based methods, transferring hairstyle from one image to the other often makes the synthesized result awkward due to differences in pose, shape, and size of heads. To resolve this, we utilize neural rendering by registering two input heads in the volumetric space to make a transferred hairstyle fit on the head of a target image. Because of the geometric nature of neural rendering, our method can render view varying images of synthesized results from a single transfer process without causing distortion from which extant hairstyle transfer methods built upon traditional GAN-based generators suffer. We verify that our method surpasses other baselines in view of pre-serving the identity and hairstyle of two input images when synthesizing a hairstyle transferred image rendered at any point of view.
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引用它的顶会 Paper5
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- What to Preserve and What to Transfer: Faithful, Identity-Preserving Diffusion-based Hairstyle TransferChaeyeon Chung, Sunghyun Park, Jeongho Kim, Jaegul ChooAAAI 2025 · 被引用 6 次
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- HairPort: In-context 3D-aware Hair Import and Transfer for ImagesAlireza Heidari, Amirhossein Alimohammadi, Ali Mahdavi-AmiriSIGGRAPH 2026
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