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Shape Anchors for Data-Driven Multi-view Reconstruction

Author(s): Owens, Andrew; Xiao, Jianxiong; Torralba, Antonio; Freeman, William

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dc.contributor.authorOwens, Andrew-
dc.contributor.authorXiao, Jianxiong-
dc.contributor.authorTorralba, Antonio-
dc.contributor.authorFreeman, William-
dc.date.accessioned2021-10-08T19:50:02Z-
dc.date.available2021-10-08T19:50:02Z-
dc.date.issued2013en_US
dc.identifier.citationOwens, Andrew, Jianxiong Xiao, Antonio Torralba, and William Freeman. "Shape Anchors for Data-Driven Multi-view Reconstruction." In IEEE International Conference on Computer Vision (2013): pp. 33-40. doi:10.1109/ICCV.2013.461en_US
dc.identifier.urihttps://openaccess.thecvf.com/content_iccv_2013/papers/Owens_Shape_Anchors_for_2013_ICCV_paper.pdf-
dc.identifier.urihttp://arks.princeton.edu/ark:/88435/pr1pc16-
dc.description.abstractWe present a data-driven method for building dense 3D reconstructions using a combination of recognition and multi-view cues. Our approach is based on the idea that there are image patches that are so distinctive that we can accurately estimate their latent 3D shapes solely using recognition. We call these patches shape anchors, and we use them as the basis of a multi-view reconstruction system that transfers dense, complex geometry between scenes. We "anchor" our 3D interpretation from these patches, using them to predict geometry for parts of the scene that are relatively ambiguous. The resulting algorithm produces dense reconstructions from stereo point clouds that are sparse and noisy, and we demonstrate it on a challenging dataset of real-world, indoor scenes.en_US
dc.format.extent33 - 40en_US
dc.language.isoen_USen_US
dc.relation.ispartofIEEE International Conference on Computer Visionen_US
dc.rightsAuthor's manuscripten_US
dc.titleShape Anchors for Data-Driven Multi-view Reconstructionen_US
dc.typeConference Articleen_US
dc.identifier.doi10.1109/ICCV.2013.461-
pu.type.symplectichttp://www.symplectic.co.uk/publications/atom-terms/1.0/conference-proceedingen_US

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