DocumentCode :
2673120
Title :
Unconstrained freehand-written Chinese characters recognition by self-growing probabilistic decision-based neural networks
Author :
Fu, Hsin-Chia ; Xu, Y.Y. ; Lee, Y.P.
Author_Institution :
Dept. of Comput. Sci. & Inf. Eng., Nat. Chiao Tung Univ., Hsinchu, Taiwan
fYear :
1998
fDate :
31 Aug-2 Sep 1998
Firstpage :
486
Lastpage :
495
Abstract :
This paper presents the design of self-growing probabilistic decision-based neural networks (SPDNN) for the recognition of unconstrained freehand-written Chinese characters. In this research, the authors have developed: (1) an SPDNN based personal handwriting adaptive methodologies, (2) a two stage recognition structure: (a) a handprinted character recognizer, and (b) a personal adaptive freehand-written Chinese character recognizer, on a personal computer. For the unconstrained human handwriting, most of the reported handwriting recognition systems performed poorly (recognition rate falls between 40% and 50%). The proposed system shows significant improvement on the recognition rates through adaptive learning. The average recognition rates was raised from 44.09% to 82.2% in 5 learning cycles. And the performance could finally be increased up to 90.03% in 10 learning cycles
Keywords :
microcomputer applications; optical character recognition; probability; self-organising feature maps; PC; SPDNN; handprinted character recognizer; personal adaptive freehand-written Chinese character recognizer; personal computer; personal handwriting adaptive methodologies; self-growing probabilistic decision-based neural networks; two-stage recognition structure; unconstrained freehand-written Chinese characters recognition; Algorithm design and analysis; Character recognition; Computer science; Councils; Design engineering; Gaussian distribution; Handwriting recognition; Humans; Microcomputers; Neural networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks for Signal Processing VIII, 1998. Proceedings of the 1998 IEEE Signal Processing Society Workshop
Conference_Location :
Cambridge
ISSN :
1089-3555
Print_ISBN :
0-7803-5060-X
Type :
conf
DOI :
10.1109/NNSP.1998.710679
Filename :
710679
Link To Document :
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