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Dokumenttyp:
Konferenzbeitrag
Autor(en):
Zhao, Y.; Birdal, T.; Deng, H.; Tombari, F.
Titel:
3D Point-Capsule Networks
Abstract:
In this paper, we propose 3D point-capsule networks, an auto-encoder designed to process sparse 3D point clouds while preserving spatial arrangements of the input data. 3D capsule networks arise as a direct consequence of our novel unified 3D auto-encoder formulation. Their dynamic routing scheme and the peculiar 2D latent space deployed by our approach bring in improvements for several common point cloud-related tasks, such as object classification, object reconstruction and part segmentation a...     »
Stichworte:
CAMP,CAMPComputerVision,ComputerVision,Rigid3DObjectDetection,ProjectPointClouds,CVPR,CVPR2018,Reconstruction,3DReconstruction
Kongress- / Buchtitel:
Computer Vision and Pattern Recognition (CVPR)
Ausrichter der Konferenz:
Ieee
Jahr:
2019
 BibTeX