Towards Part-Based Understanding of RGB-D Scans
Alexey Bokhovkin, Vladislav Ishimtsev, Emil Bogomolov, Denis Zorin, Alexey Artemov, Evgeny Burnaev, Angela Dai
2021年份
6顶会引用
摘要
Figure 1 : From an input RGB-D scan (left), we propose to detect objects in the scan and predict their complete part decompositions as semantic part completion; that is, we predict the part masks for the complete object, inferring the part geometry of any missing or unobserved regions in the scan. To achieve this, we predict the part structure of each detected object to drive a geometric prior-driven prediction of the complete part masks.
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引用它的顶会 Paper6
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- PartSLIP: Low-Shot Part Segmentation for 3D Point Clouds via Pretrained Image-Language ModelsMinghua Liu, Yinhao Zhu, Hong Cai, Shizhong Han 等CVPR 2023
它引用的顶会 Paper7
- Deep Hough Voting for 3D Object Detection in Point CloudsCharles R. Qi, Or Litany, Kaiming He, Leonidas J. GuibasICCV 2019 · 被引用 1,467 次
- SG-NN: Sparse Generative Neural Networks for Self-Supervised Scene Completion of RGB-D ScansAngela Dai, Christian Diller, Matthias NießnerCVPR 2020
- RevealNet: Seeing Behind Objects in RGB-D ScansJi Hou, Angela Dai, Matthias NießnerCVPR 2020
- OccuSeg: Occupancy-Aware 3D Instance SegmentationLei Han, Tian Zheng, Lan Xu, Lu FangCVPR 2020
- PointGroup: Dual-Set Point Grouping for 3D Instance SegmentationLi Jiang, Hengshuang Zhao, Shaoshuai Shi, Shu Liu 等CVPR 2020
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