DocumentCode
2220664
Title
Affine alignment for stroke classification
Author
Ruiz, Alberto
Author_Institution
Dept. Informatica y Sistemas, Murcia Univ., Spain
fYear
2002
fDate
2002
Firstpage
381
Lastpage
386
Abstract
We propose a stroke classification method based on affine alignment, appropriate for online recognition of mathematical handwriting. The method, essentially linear is simple and computationally efficient. The modeling limitations of the affine group are overcome by choosing adequate error functions and by performing alignment with respect to interpolated prototypes. So, moderate nonlinear transformations are tolerated, making the approach invariant to a wide range of handwriting deformations.
Keywords
handwriting recognition; image classification; affine alignment; error functions; handwriting deformations; interpolated prototypes; mathematical handwriting; nonlinear transformations; online recognition; stroke classification; Conferences; Data preprocessing; Explosions; Handwriting recognition; Interactive systems; Prototypes; Robustness; Shape; Smoothing methods; Spatial databases;
fLanguage
English
Publisher
ieee
Conference_Titel
Frontiers in Handwriting Recognition, 2002. Proceedings. Eighth International Workshop on
Print_ISBN
0-7695-1692-0
Type
conf
DOI
10.1109/IWFHR.2002.1030940
Filename
1030940
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