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SymPS: BRDF Symmetry Guided Photometric Stereo for Shape and Light Source Estimation

机译:SymPS:BRDF对称引导的光度学立体,用于形状和光源估计

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摘要

We propose uncalibrated photometric stereo methods that address the problem due to unknown isotropic reflectance. At the core of our methods is the notion of “constrained half-vector symmetry” for general isotropic BRDFs. We show that such symmetry can be observed in various real-world materials, and it leads to new techniques for shape and light source estimation. Based on the 1D and 2D representations of the symmetry, we propose two methods for surface normal estimation; one focuses on accurate elevation angle recovery for surface normals when the light sources only cover the visible hemisphere, and the other for comprehensive surface normal optimization in the case that the light sources are also non-uniformly distributed. The proposed robust light source estimation method also plays an essential role to let our methods work in an uncalibrated manner with good accuracy. Quantitative evaluations are conducted with both synthetic and real-world scenes, which produce the state-of-the-art accuracy for all of the non-Lambertian materials in MERL database and the real-world datasets.
机译:我们提出了未经校准的测光立体方法,以解决由于各向同性反射率未知而引起的问题。我们方法的核心是一般各向同性BRDF的“约束半矢量对称”概念。我们证明了这种对称性可以在各种现实世界的材料中观察到,并导致了形状和光源估计的新技术。基于对称的一维和二维表示,我们提出了两种用于表面法线估计的方法:一种专注于当光源仅覆盖可见半球时对表面法线进行精确的仰角恢复,另一种专注于在光源也非均匀分布的情况下进行全面的表面法线优化。所提出的鲁棒光源估计方法也起着至关重要的作用,以使我们的方法能够以未经校准的方式准确地工作。对合成场景和真实场景都进行了定量评估,这为MERL数据库和真实数据集中的所有非朗伯材料提供了最新的准确性。

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