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A hybrid CRF framework for semantic 3D reconstruction

  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Nowadays, in order to achieve an immersive experience, virtual reality systems usually require vivid 3D models and a good understanding of particular scenes. The limitations of separately optimizing image segmentation and 3D modeling from images have gradually been seen by more and more researchers, so plenty of novel methods on how to combine them for a better result begin to be put forward widely. In this paper, we propose a new hybrid framework to generate semantic 3D dense models from monocular images. Based on the available hierarchical CRFs model, we make full use of the correlation between voxels and their corresponding pixels from different images. Naturally, valuable information from 3D space can be added as one of the important energy items in the model. Either pixels, segments or voxles are all regarded as a node in the huge graph we build. Our ultimate goal is to realize a joint optimization for both 3D dense reconstruction and image segmentation. Experiments have been done on four real challenging datasets and all of the results prove the efficiency of our proposed hybrid framework.

Original languageEnglish
Title of host publicationProceedings - VRST 2017
Subtitle of host publication23rd ACM Conference on Virtual Reality Software and Technology
EditorsStephen N. Spencer
PublisherAssociation for Computing Machinery
ISBN (Electronic)9781450355483
DOIs
StatePublished - 8 Nov 2017
Event23rd ACM Conference on Virtual Reality Software and Technology, VRST 2017 - Gothenburg, Sweden
Duration: 8 Nov 201710 Nov 2017

Publication series

NameProceedings of the ACM Symposium on Virtual Reality Software and Technology, VRST
VolumePart F131944

Conference

Conference23rd ACM Conference on Virtual Reality Software and Technology, VRST 2017
Country/TerritorySweden
CityGothenburg
Period8/11/1710/11/17

Keywords

  • Dense 3D modeling
  • Graphics/3D
  • Image segmentation
  • Semantic reconstruction

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