Title :
Accurate principal directions estimation in discrete surfaces
Author :
Agam, Gady ; Tang, Xiaojing
Author_Institution :
Dept. of Comput. Sci., Illinois Inst. of Technol., Chicago, IL, USA
Abstract :
Accurate local surface geometry estimation in discrete surfaces is an important problem with numerous applications. Principal curvatures and principal directions can be used in applications such as shape analysis and recognition, object segmentation, adaptive smoothing, anisotropic fairing of irregular meshes, and anisotropic texture mapping. In this paper, a novel approach for accurate principal direction estimation in discrete surfaces is described. The proposed approach is based on local directional curve sampling of the surface where the sampling frequency can be controlled. This local model has a large number of degrees of freedoms compared with known techniques and so can better represent the local geometry. The proposed approach is quantitatively evaluated and compared with known techniques for principal direction estimation. In order to perform an unbiased evaluation in which smoothing effects are factored out, we use a set of randomly generated Bezier surface patches for which the principal directions can be computed analytically.
Keywords :
computational geometry; estimation theory; image recognition; image segmentation; smoothing methods; surface fitting; Bezier surface patches; adaptive smoothing; anisotropic fairing; anisotropic texture mapping; discrete surfaces; irregular meshes; local surface geometry estimation; object segmentation; principal curvatures; principal direction estimation; shape analysis; shape recognition; Anisotropic magnetoresistance; Frequency; Geometry; Object segmentation; Performance analysis; Performance evaluation; Sampling methods; Shape; Smoothing methods; Solid modeling;
Conference_Titel :
3-D Digital Imaging and Modeling, 2005. 3DIM 2005. Fifth International Conference on
Print_ISBN :
0-7695-2327-7
DOI :
10.1109/3DIM.2005.14