On Joint Estimation of Pose, Geometry and svBRDF From a Handheld Scanner
Carolin Schmitt, Simon Donné, Gernot Riegler, Vladlen Koltun, Andreas Geiger
摘要
We propose a novel formulation for joint recovery of camera pose, object geometry and spatially-varying BRDF. The input to our approach is a sequence of RGB-D images captured by a mobile, hand-held scanner that actively illuminates the scene with point light sources. Compared to previous works that jointly estimate geometry and materials from a hand-held scanner, we formulate this problem using a single objective function that can be minimized using off-the-shelf gradient-based solvers. By integrating material clustering as a differentiable operation into the optimization process, we avoid pre-processing heuristics and demonstrate that our model is able to determine the correct number of specular materials independently. We provide a study on the importance of each component in our formulation and on the requirements of the initial geometry. We show that optimizing over the poses is crucial for accurately recovering fine details and that our approach naturally results in a semantically meaningful material segmentation.
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引用它的顶会 Paper19
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- Modeling Indirect Illumination for Inverse RenderingYuanqing Zhang, Jiaming Sun, Xingyi He, Huan Fu 等CVPR 2022 · 被引用 140 次
- NeRO: Neural Geometry and BRDF Reconstruction of Reflective Objects from Multiview ImagesYuan Liu, Peng Wang, Cheng Lin, Xiaoxiao Long 等SIGGRAPH 2023 · 被引用 128 次
- NeILF++: Inter-Reflectable Light Fields for Geometry and Material EstimationJingyang Zhang, Yao Yao, Shiwei Li, Jingbo Liu 等ICCV 2023 · 被引用 92 次
它引用的顶会 Paper1
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