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Free-Form 3-D Object Recognition at Multiple Scales
Author(s) -
Farzin Mokhtarian,
Nasser Khalili,
PC Yuen
Publication year - 2000
Publication title -
citeseer x (the pennsylvania state university)
Language(s) - English
Resource type - Conference proceedings
DOI - 10.5244/c.14.45
Subject(s) - smoothing , artificial intelligence , robustness (evolution) , gaussian , cognitive neuroscience of visual object recognition , pattern recognition (psychology) , maxima and minima , mathematics , invariant (physics) , vertex (graph theory) , scaling , computer vision , computer science , feature extraction , algorithm , geometry , mathematical analysis , combinatorics , graph , biochemistry , chemistry , physics , quantum mechanics , mathematical physics , gene
The recognition of free-form 3-D objects using multi-scale features recovered from 3-D models, and based on the geometric hashing algorithm and global veri cation is presented. The feature points on the object are detected by smoothing its surface after construction of semigeodesic coordinates at each point (mesh vertex). This technique is the generalisation of the CSS method which is a powerful shape descriptor expected to be in the MPEG-7 standard. Smoothing is used to remove noise and to select multi-scale feature points to add to the eAEciency and robustness of the system. The local maxima of Gaussian and mean curvatures are selected as feature points. Furthermore the torsion maxima of the zero-crossing contours of Gaussian and mean curvatures are also selected as feature points. Recognition results are demonstrated for rotated and scaled as well as partially occluded objects. In order to con rm the match, 3D translation, rotation and scaling parameters are used for veri cation and results indicate that our technique is invariant to those transformations.

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