DI-Fusion: Online Implicit 3D Reconstruction With Deep Priors
Jiahui Huang, Shi-Sheng Huang, Haoxuan Song, Shi-Min Hu
摘要
Previous online 3D dense reconstruction methods struggle to achieve the balance between memory storage and surface quality, largely due to the usage of stagnant underlying geometry representation, such as TSDF (truncated signed distance functions) or surfels, without any knowledge of the scene priors. In this paper, we present DI-Fusion (Deep Implicit Fusion), based on a novel 3D representation, i.e. Probabilistic Local Implicit Voxels (PLIVoxs), for online 3D reconstruction with a commodity RGB-D camera. Our PLIVox encodes scene priors considering both the local geometry and uncertainty parameterized by a deep neural network. With such deep priors, we are able to perform online implicit 3D reconstruction achieving state-of- the-art camera trajectory estimation accuracy and mapping quality, while achieving better storage efficiency compared with previous online 3D reconstruction approaches. Our implementation is available at https://www.github . com/huangjh-pub/di-fusion.
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引用它的顶会 Paper25
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它引用的顶会 Paper8
- Implicit Neural Representations with Periodic Activation FunctionsVincent Sitzmann, Julien N. P. Martel, Alexander W. Bergman, David B. Lindell 等NeurIPS 2020 · 被引用 4,008 次
- MetaSDF: Meta-Learning Signed Distance FunctionsVincent Sitzmann, Eric R. Chan, Richard Tucker, Noah Snavely 等NeurIPS 2020 · 被引用 302 次
- BAE-NET: Branched Autoencoder for Shape Co-SegmentationZhiqin Chen, Kangxue Yin, Matthew Fisher, Siddhartha Chaudhuri 等ICCV 2019 · 被引用 153 次
- ClusterSLAM: A SLAM Backend for Simultaneous Rigid Body Clustering and Motion EstimationJiahui Huang, Sheng Yang, Zishuo Zhao, Yu-Kun Lai 等ICCV 2019 · 被引用 89 次
- DIST: Rendering Deep Implicit Signed Distance Function With Differentiable Sphere TracingShaohui Liu, Yinda Zhang, Songyou Peng, Boxin Shi 等CVPR 2020
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