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Context-adaptive navigation of 3D model collections

Academic Article
Publication Date:
2019
abstract:
When reasoning about similarity in a collection of objects with heterogeneous qualities, there are several aspects of interest that can be followed to explore the collection. Indeed, the notion of similarity among 3D models is not only grounded on the geometric shape but also, for instance, on the style, material, color, decorations, common parts. These are all important factors that concur to the concept of similarity. Search engines for visual content are expected to address similarity assessment in collections, providing a higher degree of flexibility with respect to the traditional 3D object retrieval operations. In this work, we describe the design and functioning of a search engine working on multiple factors and discuss the results on a number of collections, which challenge existing 3D object retrieval engines.
Iris type:
01.01 Articolo in rivista
Keywords:
3D similarity exploration; Similarity measures combination; 3D object classification
List of contributors:
MOSCOSO THOMPSON, Elia; Spagnuolo, Michela; Biasotti, SILVIA MARIA
Authors of the University:
BIASOTTI SILVIA MARIA
MOSCOSO THOMPSON ELIA
SPAGNUOLO MICHELA
Handle:
https://iris.cnr.it/handle/20.500.14243/346432
Published in:
COMPUTERS & GRAPHICS
Journal
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