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Dokumenttyp:
Konferenzbeitrag
Autor(en):
Rethage, D.; Wald, J.; Sturm, J.; Navab, N.; Tombari, F.
Titel:
Fully-Convolutional Point Networks for Large-Scale Point Clouds
Abstract:
This work proposes a general-purpose, fully-convolutional network architecture for efficiently processing large-scale 3D data. One striking characteristic of our approach is its ability to process unorganized 3D representations such as point clouds as input, then transforming them internally to ordered structures to be processed via 3D convolutions. In contrast to conventional approaches that maintain either unorganized or organized representations, from input to output, our approach has the adv...     »
Stichworte:
CAMP,CAMPComputerVision,ComputerVision,ECCV,CNN,Deep Learning
Kongress- / Buchtitel:
European Conference on Computer Vision (ECCV)
Jahr:
2018
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