DocumentCode :
3420200
Title :
On-line hand-printing recognition with neural networks
Author :
Lyon, Richard F. ; Yaeger, Larry S.
Author_Institution :
Adv. Technol. Group, Apple Comput. Inc., Cupertino, CA, USA
fYear :
1996
fDate :
12-14 Feb 1996
Firstpage :
201
Lastpage :
212
Abstract :
The need for fast and accurate text entry on small handheld computers has led to a resurgence of interest in on-line word recognition using artificial neural networks. Classical methods have been combined and improved to produce robust recognition of hand-printed English text. The central concept of a neural net as a character classifier provides a good base for a recognition system; long-standing issues relative to training generalization, segmentation, probabilistic formalisms, etc., need to resolved, however, to get adequate performance. A number of innovations in how to use a neural net as a classifier in a word recognizer are presented: negative training, stroke warping, balancing, normalized output error, error emphasis, multiple representations, quantized weights, and integrated word segmentation all contribute to efficient and robust performance
Keywords :
character recognition; learning (artificial intelligence); neural nets; notebook computers; pattern classification; English text; balancing; character classifier; error emphasis; hand-printing recognition; handheld computers; integrated word segmentation; multiple representations; negative training; neural networks; normalized output error; probabilistic formalisms; quantized weights; stroke warping; text entry; training generalization; Character recognition; Computer errors; Costs; Handwriting recognition; Neural networks; Personal digital assistants; Robustness; Speech recognition; Target recognition; Text recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microelectronics for Neural Networks, 1996., Proceedings of Fifth International Conference on
Conference_Location :
Lausanne
ISSN :
1086-1947
Print_ISBN :
0-8186-7373-7
Type :
conf
DOI :
10.1109/MNNFS.1996.493792
Filename :
493792
Link To Document :
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