Perceptual Deep Depth Super-Resolution
Oleg Voynov, Alexey Artemov, Vage Egiazarian, Alexandr Notchenko, Gleb Bobrovskikh, Evgeny Burnaev, Denis Zorin
摘要
RGBD images, combining high-resolution color and lower-resolution depth from various types of depth sensors, are increasingly common. One can significantly improve the resolution of depth maps by taking advantage of color information; deep learning methods make combining color and depth information particularly easy. However, fusing these two sources of data may lead to a variety of artifacts. If depth maps are used to reconstruct 3D shapes, e.g., for virtual reality applications, the visual quality of upsampled images is particularly important. The main idea of our approach is to measure the quality of depth map upsampling using renderings of resulting 3D surfaces. We demonstrate that a simple visual appearance-based loss, when used with either a trained CNN or simply a deep prior, yields significantly improved 3D shapes, as measured by a number of existing perceptual metrics. We compare this approach with a number of existing optimization and learning-based techniques.
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引用它的顶会 Paper5
- Unsupervised Non-Rigid Image Distortion Removal via Grid DeformationNianyi Li, Simron Thapa, Cameron Whyte, Albert W. Reed 等ICCV 2021 · 被引用 38 次
- Fast, High-Quality Hierarchical Depth-Map Super-ResolutionYiguo Qiao, Licheng Jiao, Wenbin Li, Christian Richardt 等ACM MM 2021 · 被引用 7 次
- Consistent Direct Time-of-Flight Video Depth Super-ResolutionZhanghao Sun, Wei Ye, Jinhui Xiong, Gyeongmin Choe 等CVPR 2023
- Channel Attention Based Iterative Residual Learning for Depth Map Super-ResolutionXibin Song, Yuchao Dai, Dingfu Zhou, Liu Liu 等CVPR 2020
- Multi-Sensor Large-Scale Dataset for Multi-View 3D ReconstructionOleg Voynov, Gleb Bobrovskikh, Pavel A. Karpyshev, Saveliy Galochkin 等CVPR 2023
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