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SATR: Zero-Shot Semantic Segmentation of 3D Shapes

  • King Abdullah University of Science and Technology
  • École Polytechnique

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionContribution à une conférenceRevue par des pairs

29 Citations (Scopus)

Résumé

We explore the task of zero-shot semantic segmentation of 3D shapes by using large-scale off-the-shelf 2D image recognition models. Surprisingly, we find that modern zero-shot 2D object detectors are better suited for this task than contemporary text/image similarity predictors or even zero-shot 2D segmentation networks. Our key finding is that it is possible to extract accurate 3D segmentation maps from multi-view bounding box predictions by using the topological properties of the underlying surface. For this, we develop the Segmentation Assignment with Topological Reweighting (SATR) algorithm and evaluate it on ShapeNetPart and our proposed FAUST benchmarks. SATR achieves state-of-the-art performance and outperforms a baseline algorithm by 1.3% and 4% average mIoU on the FAUST coarse and fine-grained benchmarks, respectively, and by 5.2% average mIoU on the ShapeNetPart benchmark. Our source code and data will be publicly released. Project webpage: https://samir55.github.io/SATR/.

langue originaleAnglais
titreProceedings - 2023 IEEE/CVF International Conference on Computer Vision, ICCV 2023
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages15120-15133
Nombre de pages14
ISBN (Electronique)9798350307184
Les DOIs
étatPublié - 1 janv. 2023
Modification externeOui
Evénement2023 IEEE/CVF International Conference on Computer Vision, ICCV 2023 - Paris, France
Durée: 2 oct. 20236 oct. 2023

Série de publications

NomProceedings of the IEEE International Conference on Computer Vision
ISSN (imprimé)1550-5499

Une conférence

Une conférence2023 IEEE/CVF International Conference on Computer Vision, ICCV 2023
Pays/TerritoireFrance
La villeParis
période2/10/236/10/23

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