Lite2Relight: 3D-aware Single Image Portrait Relighting
Pramod Rao, Gereon Fox, Abhimitra Meka, Mallikarjun B. R., Fangneng Zhan, Tim Weyrich, Bernd Bickel, Hanspeter Pfister, Wojciech Matusik, Mohamed A. Elgharib, Christian Theobalt
摘要
Achieving photorealistic 3D view synthesis and relighting of human portraits is pivotal for advancing AR/VR applications. Existing methodologies in portrait relighting demonstrate substantial limitations in terms of generalization and 3D consistency, coupled with inaccuracies in physically realistic lighting and identity preservation. Furthermore, personalization from a single view is difficult to achieve and often requires multiview images during the testing phase or involves slow optimization processes. This paper introduces Lite2Relight , a novel technique that can predict 3D consistent head poses of portraits while performing physically plausible light editing at interactive speed. Our method uniquely extends the generative capabilities and efficient volumetric representation of EG3D, leveraging a lightstage dataset to implicitly disentangle face reflectance and perform relighting under target HDRI environment maps. By utilizing a pre-trained geometry-aware encoder and a feature alignment module, we map input images into a relightable 3D space, enhancing them with a strong face geometry and reflectance prior. Through extensive quantitative and qualitative evaluations, we show that our method outperforms the state-of-the-art methods in terms of efficacy, photorealism, and practical application. This includes producing 3D-consistent results of the full head, including hair, eyes, and expressions. Lite2Relight paves the way for large-scale adoption of photorealistic portrait editing in various domains, offering a robust, interactive solution to a previously constrained problem.
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引用它的顶会 Paper12
- MV-CoLight: Efficient Object Compositing with Consistent Lighting and Shadow GenerationKerui Ren, Jiayang Bai, Linning Xu, Lihan Jiang 等NeurIPS 2025 · 被引用 9 次
- LuxRemix: Lighting Decomposition and Remixing for Indoor ScenesRuofan Liang, Norman Müller, Ethan Weber, Duncan Zauss 等CVPR 2026 · 被引用 7 次
- POLAR: A Portrait OLAT Dataset and Generative Framework for Illumination-Aware Face ModelingZhuo Chen, Chengqun Yang, Zhuo Su, Zheng Lv 等CVPR 2026 · 被引用 2 次
- TransLight: Image-Guided Customized Lighting Control with Generative DecouplingZongming Li, Lianghui Zhu, Haocheng Shen, Longjin Ran 等ICML 2026 · 被引用 2 次
- Parametric Shadow Control for Portrait Generation in Text-to-Image Diffusion ModelsHaoming Cai, Tsung-Wei Huang, Shiv Gehlot, Brandon Y. Feng 等ICCV 2025 · 被引用 2 次
它引用的顶会 Paper26
- Efficient Geometry-aware 3D Generative Adversarial NetworksEric R. Chan, Connor Z. Lin, Matthew A. Chan, Koki Nagano 等CVPR 2022 · 被引用 984 次
- StyleNeRF: A Style-based 3D Aware Generator for High-resolution Image SynthesisJiatao Gu, Lingjie Liu, Peng Wang, Christian TheobaltICLR 2022 · 被引用 622 次
- NeRD: Neural Reflectance Decomposition from Image CollectionsMark Boss, Raphael Braun, Varun Jampani, Jonathan T. Barron 等ICCV 2021 · 被引用 608 次
- Deep Single-Image Portrait RelightingHao Zhou, Sunil Hadap, Kalyan Sunkavalli, David JacobsICCV 2019 · 被引用 247 次
- Mixture of volumetric primitives for efficient neural renderingStephen Lombardi, Tomas Simon, Gabriel Schwartz, Michael Zollhöfer 等SIGGRAPH 2021 · 被引用 240 次
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