SfPUEL: Shape from Polarization under Unknown Environment Light
Youwei Lyu, Heng Guo, Kailong Zhang, Si Li, Boxin Shi
Abstract
Shape from polarization (SfP) benefits from advancements like polarization cameras for single-shot normal estimation, but its performance heavily relies on light conditions. This paper proposes SfPUEL, an end-to-end SfP method to jointly estimate surface normal and material under unknown environment light. To handle this challenging light condition, we design a transformer-based framework for enhancing the perception of global context features. We further propose to integrate photometric stereo (PS) priors from pretrained models to enrich extracted features for high-quality normal predictions. As metallic and dielectric materials exhibit different BRDFs, SfPUEL additionally predicts dielectric and metallic material segmentation to further boost performance. Experimental results on synthetic and our collected real-world dataset demonstrate that SfPUEL significantly outperforms existing SfP and single-shot normal estimation methods. The code and dataset is available at https://github.com/YouweiLyu/SfPUEL .
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Cited by top-tier papers3
- PolGS: Polarimetric Gaussian Splatting for Fast Reflective Surface ReconstructionYufei Han, Bowen Tie, Heng Guo, Youwei Lyu et al.ICCV 2025 · 2 citations
- DuRP: Dual-Stage Physics-Embedded Learning for Joint Radiance and Polarization RestorationZhenshuo Yang, Qian He, Zhiyuan Liu, Baojie Fan et al.ICML 2026
- Polarization State Tracing for Reflection Removal and Color-Consistent ReconstructionDongyue Wang, Yang Lu, Jiandong TianCVPR 2026
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- Estimating and Exploiting the Aleatoric Uncertainty in Surface Normal EstimationGwangbin Bae, Ignas Budvytis, Roberto CipollaICCV 2021 · 154 citations
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