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ICASSP
2007
IEEE

Statistical Analysis of the Global Geodesic Function for 3D Object Classification

13 years 11 months ago
Statistical Analysis of the Global Geodesic Function for 3D Object Classification
This paper presents a novel classification strategy for 3D objects. Our technique is based on using a Global Geodesic Function to intrinsically describe the surface ofan object. The choice of the Global Geodesic Function ensures the invariance ofthe classification procedure to scaling and all isometric transformations. Using the Jensen-Shannon Divergence, feature parameters are extracted from the probability distribution functions of the Global Geodesic Function for each one ofthe classes. These parameters are used in the decision of a class membership of an object. This approach demonstrates low computational cost, efficiency, and robustness to resolution over many different data sets.
Djamila Aouada, Shuo Feng, Hamid Krim
Added 02 Jun 2010
Updated 02 Jun 2010
Type Conference
Year 2007
Where ICASSP
Authors Djamila Aouada, Shuo Feng, Hamid Krim
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