DocumentCode :
2136038
Title :
Comparing between data mining algorithms: "Close+, Apriori and CHARM" and “Kmeans classification algorithm” and applying them on 3D object indexing
Author :
El far, Mohamed ; Moumoun, Lahcen ; Chahhou, Mohamed ; Gadi, Taoufiq ; Benslimane, Rachid
Author_Institution :
Lab. LAVETE, Univ. Hassan 1er, Settat, Morocco
fYear :
2011
fDate :
7-9 April 2011
Firstpage :
1
Lastpage :
6
Abstract :
Three-dimensional models are more and more used in applications in which the necessity to visualize realistic objects is felt (CAD/CAO, medical simulations, games, virtual reality etc.). Consequently, the management of large sizes of 3D data collections becomes an important field. The indexation of such data allows a designer for instance to easily find similar data - in a visual or semantic sense for a displayed requested object. There are two major approaches for 3d objects indexing; the search in the database can be done via requests that are either 3D objects or via some 2D views of the 3D object. In this contribution, we are interested in the latter. Our purpose is to extract characteristic views of 3D models using Data Mining algorithms "Apriori, Charm, Close+ and Extraction of association rules" and Zernike moments. Furthermore, the information retrieval relies on a Bayesian probabilistic approach. We present the obtained results using a database that contains 120 3D models selected from the Princeton Shape Benchmark, we associate to each 3D model 342 2D views then we compare them to the ones obtained with classical methods (e.g. Kmeans).
Keywords :
Bayes methods; data mining; image retrieval; indexing; 3D object indexing; Apriori algorithm; Bayesian probabilistic approach; CHARM algorithm; Close+ algorithm; Kmeans classification algorithm; Princeton Shape Benchmark; Zernike moments; association rules extraction; data mining algorithms; information retrieval; Association rules; Databases; Search problems; Shape; Solid modeling; Three dimensional displays; 3D indexing; 3D models; Algorithm Apriori; Algorithm CLOSE+; Charm; Zernike moments; association rules; characteristic views; probabilities;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia Computing and Systems (ICMCS), 2011 International Conference on
Conference_Location :
Ouarzazate
ISSN :
Pending
Print_ISBN :
978-1-61284-730-6
Type :
conf
DOI :
10.1109/ICMCS.2011.5945722
Filename :
5945722
Link To Document :
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