ShadowNeuS: Neural SDF Reconstruction by Shadow Ray Supervision
Jingwang Ling, Zhibo Wang, Feng Xu
Abstract
By supervising camera rays between a scene and multiview image planes, NeRF reconstructs a neural scene representation for the task of novel view synthesis. On the other hand, shadow rays between the light source and the scene have yet to be considered. Therefore, we propose a novel shadow ray supervision scheme that optimizes both the samples along the ray and the ray location. By supervising shadow rays, we successfully reconstruct a neural SDF of the scene from single-view images under multiple lighting conditions. Given single-view binary shadows, we train a neural network to reconstruct a complete scene not limited by the camera's line of sight. By further modeling the correlation between the image colors and the shadow rays, our technique can also be effectively extended to RGB inputs. We compare our method with previous works on challenging tasks of shape reconstruction from singleview binary shadow or RGB images and observe significant improvements. The code and data are available at https://github.com/gerwang/ShadowNeuS .
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Install the CLIlune papers fulltext fff44ea8-21ba-47b0-b495-75d3ef4f7d5fCited by top-tier papers7
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