V-FUSE: Volumetric Depth Map Fusion with Long-Range Constraints
Nathaniel Burgdorfer, Philippos Mordohai
摘要
We introduce a learning-based depth map fusion framework that accepts a set of depth and confidence maps generated by a Multi-View Stereo (MVS) algorithm as input and improves them. This is accomplished by integrating volumetric visibility constraints that encode long-range surface relationships across different views into an end-to-end trainable architecture. We also introduce a depth search window estimation sub-network trained jointly with the larger fusion sub-network to reduce the depth hypothesis search space along each ray. Our method learns to model depth consensus and violations of visibility constraints directly from the data; effectively removing the necessity of fine-tuning fusion parameters. Extensive experiments on MVS datasets show substantial improvements in the accuracy of the output fused depth and confidence maps. Our code is available at https://github.com/nburgdorfer/V-FUSE
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- TransMVSNet: Global Context-aware Multi-view Stereo Network with TransformersYikang Ding, Wentao Yuan, Qingtian Zhu, Haotian Zhang 等CVPR 2022 · 被引用 236 次
- Rethinking Depth Estimation for Multi-View Stereo: A Unified RepresentationRui Peng, Rongjie Wang, Zhenyu Wang, Yawen Lai 等CVPR 2022 · 被引用 159 次
- EPP-MVSNet: Epipolar-assembling based Depth Prediction for Multi-view StereoXinjun Ma, Yue Gong, Qirui Wang, Jingwei Huang 等ICCV 2021 · 被引用 147 次
- Multi-view 3D Reconstruction with TransformersDan Wang, Xinrui Cui, Xun Chen, Zhengxia Zou 等ICCV 2021 · 被引用 111 次
- Multi-Frame Self-Supervised Depth with TransformersVitor Guizilini, Rares Ambrus, Dian Chen, Sergey Zakharov 等CVPR 2022 · 被引用 95 次
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