DocumentCode :
2958935
Title :
The growing Self-organizing surface Map
Author :
DalleMole, V.L. ; Araujo, Aluizio F. R.
Author_Institution :
Inf. Dept., Fed. Technol. Univ. of Parana - UTFPR, Medianeira
fYear :
2008
fDate :
1-8 June 2008
Firstpage :
2061
Lastpage :
2068
Abstract :
This paper presents a new Self-organizing Map suitable for recovering a 2D surface starting from points sampled on the object surface. Growing self-organizing surface map (GSOSM), is a new algorithm of the growing SOM family that reproduce the surface as an incremental mesh composed of triangles which are approximately equilateral. GSOSM introduces a new connection learning rule, called competitive connection Hebbian learning (CCHL), that produces a complete triangulation where CHL fails. Differently from other models such as neural meshes (NM), GSOSM recovers a surface topology from homogeneous samples distribution according to any presentation sequence. GSOSM map is a mesh that represents the object surface with a detail level established by a parameter, allowing different versions of a same object surface. Moreover, GSOSM reconstructions are very often meshes free of false or overlapping faces, and then GSOSM is a potential tool for virtual reconstruction of real objects.
Keywords :
Hebbian learning; image reconstruction; mesh generation; self-organising feature maps; unsupervised learning; 2D surface; competitive connection Hebbian learning; complete triangulation; growing self-organizing surface map; neural meshes; object surface; virtual reconstruction; Clouds; Counting circuits; Feedforward systems; Hebbian theory; Mesh generation; Multi-layer neural network; Neural networks; Surface fitting; Surface reconstruction; Topology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 2008. IJCNN 2008. (IEEE World Congress on Computational Intelligence). IEEE International Joint Conference on
Conference_Location :
Hong Kong
ISSN :
1098-7576
Print_ISBN :
978-1-4244-1820-6
Electronic_ISBN :
1098-7576
Type :
conf
DOI :
10.1109/IJCNN.2008.4634081
Filename :
4634081
Link To Document :
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