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Online Recognition of Multi-Stroke Symbols with Orthogonal Series

Online Recognition of Multi-Stroke Symbols with Orthogonal Series

Authors :
Stephen M. Watt
Oleg Golubitsky
Source :
ICDAR
Publication Year :
2009
Publisher :
IEEE, 2009.

Abstract

We propose an efficient method to recognize multi-stroke handwritten symbols. The method is based on computing the truncated Legendre-Sobolev expansions of the coordinate functions of the stroke curves and classifying them using linear support vector machines. Earlier work has demonstrated the efficiency and robustness of this approach in the case of single-stroke characters. Here we show that the method can be successfully applied to multi-stroke characters by joining the strokes and including the number of strokes in the feature vector or in the class labels. Our experiments yield an error rate of 11-20%, and in 99% of cases the correct class is among the top 4. The recognition process causes virtually no delay, because computation of Legendre-Sobolev expansions and SVM classification proceed on-line, as the strokes are written.

Details

Database :
OpenAIRE
Journal :
2009 10th International Conference on Document Analysis and Recognition
Accession number :
edsair.doi...........058777dd43fbdf7974472bf2d05871ce
Full Text :
https://doi.org/10.1109/icdar.2009.229