SPLINE-Net: Sparse Photometric Stereo Through Lighting Interpolation and Normal Estimation Networks
Qian Zheng, Yiming Jia, Boxin Shi, Xudong Jiang, Lingyu Duan, Alex C. Kot
摘要
This paper solves the Sparse Photometric stereo through Lighting Interpolation and Normal Estimation using a generative Network (SPLINE-Net). SPLINE-Net contains a lighting interpolation network to generate dense lighting observations given a sparse set of lights as inputs followed by a normal estimation network to estimate surface normals. Both networks are jointly constrained by the proposed symmetric and asymmetric loss functions to enforce isotropic constrain and perform outlier rejection of global illumination effects. SPLINE-Net is verified to outperform existing methods for photometric stereo of general BRDFs by using only ten images of different lights instead of using nearly one hundred images.
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引用它的顶会 Paper13
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- Neural Reflectance for Shape Recovery with Shadow HandlingJunxuan Li, Hongdong LiCVPR 2022 · 被引用 41 次
- DiLiGenT102: A Photometric Stereo Benchmark Dataset with Controlled Shape and Material VariationJieji Ren, Feishi Wang, Jiahao Zhang, Qian Zheng 等CVPR 2022 · 被引用 26 次
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