Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model

This paper presents novel feature extraction and classification methods for online handwritten Chinese character recognition (HCCR). The X-graph and Y -graph transformation is proposed for deriving a feature, which shows useful properties such as invariance to different writing styles. Central to th...

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Main Authors: Chang, Y. F., Lee, J. C., M. Rijal, O., Syed Abu Bakar, Syed Abdul Rahman
Format: Article
Language:English
Published: AMCS 2010
Subjects:
Online Access:http://eprints.utm.my/id/eprint/27067/1/SyedAbdulRahman2010_EfficientOnlineHandwrittenChineseCharacterRecognition.pdf
http://eprints.utm.my/id/eprint/27067/
http://dx.doi.org/10.2478/v10006-010-0055-x
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spelling my.utm.270672019-05-22T01:17:23Z http://eprints.utm.my/id/eprint/27067/ Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model Chang, Y. F. Lee, J. C. M. Rijal, O. Syed Abu Bakar, Syed Abdul Rahman TK Electrical engineering. Electronics Nuclear engineering This paper presents novel feature extraction and classification methods for online handwritten Chinese character recognition (HCCR). The X-graph and Y -graph transformation is proposed for deriving a feature, which shows useful properties such as invariance to different writing styles. Central to the proposed method is the idea of capturing the geometrical and topological information from the trajectory of the handwritten character using the X-graph and the Y-graph. For feature size reduction, the Haar wavelet transformation was applied on the graphs. For classification, the coefficient of determination (R2p) from the two-dimensional unreplicated linear functional relationship model is proposed as a similarity measure. The proposed methods show strong discrimination power when handling problems related to size, position and slant variation, stroke shape deformation, close resemblance of characters, and non-normalization. The proposed recognition system is applied to a database with 3000 frequently used Chinese characters, yielding a high recognition rate of 97.4% with reduced processing time of 75.31%, 73.05%, 58.27% and 40.69% when compared with recognition systems using the city block distance with deviation (CBDD), the minimum distance (MD), the compound Mahalanobis function (CMF) and the modified quadratic discriminant function (MQDF), respectively. High precision rates were also achieved. AMCS 2010-12 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/27067/1/SyedAbdulRahman2010_EfficientOnlineHandwrittenChineseCharacterRecognition.pdf Chang, Y. F. and Lee, J. C. and M. Rijal, O. and Syed Abu Bakar, Syed Abdul Rahman (2010) Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model. International Journal Of Applied Mathematics And Computer Science, 20 (4). pp. 727-738. ISSN 1641-876X http://dx.doi.org/10.2478/v10006-010-0055-x DOI:10.2478/v10006-010-0055-x
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Chang, Y. F.
Lee, J. C.
M. Rijal, O.
Syed Abu Bakar, Syed Abdul Rahman
Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
description This paper presents novel feature extraction and classification methods for online handwritten Chinese character recognition (HCCR). The X-graph and Y -graph transformation is proposed for deriving a feature, which shows useful properties such as invariance to different writing styles. Central to the proposed method is the idea of capturing the geometrical and topological information from the trajectory of the handwritten character using the X-graph and the Y-graph. For feature size reduction, the Haar wavelet transformation was applied on the graphs. For classification, the coefficient of determination (R2p) from the two-dimensional unreplicated linear functional relationship model is proposed as a similarity measure. The proposed methods show strong discrimination power when handling problems related to size, position and slant variation, stroke shape deformation, close resemblance of characters, and non-normalization. The proposed recognition system is applied to a database with 3000 frequently used Chinese characters, yielding a high recognition rate of 97.4% with reduced processing time of 75.31%, 73.05%, 58.27% and 40.69% when compared with recognition systems using the city block distance with deviation (CBDD), the minimum distance (MD), the compound Mahalanobis function (CMF) and the modified quadratic discriminant function (MQDF), respectively. High precision rates were also achieved.
format Article
author Chang, Y. F.
Lee, J. C.
M. Rijal, O.
Syed Abu Bakar, Syed Abdul Rahman
author_facet Chang, Y. F.
Lee, J. C.
M. Rijal, O.
Syed Abu Bakar, Syed Abdul Rahman
author_sort Chang, Y. F.
title Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
title_short Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
title_full Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
title_fullStr Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
title_full_unstemmed Efficient online handwritten Chinese character recognition system using a two-dimensional functional relationship model
title_sort efficient online handwritten chinese character recognition system using a two-dimensional functional relationship model
publisher AMCS
publishDate 2010
url http://eprints.utm.my/id/eprint/27067/1/SyedAbdulRahman2010_EfficientOnlineHandwrittenChineseCharacterRecognition.pdf
http://eprints.utm.my/id/eprint/27067/
http://dx.doi.org/10.2478/v10006-010-0055-x
_version_ 1643647940291461120
score 13.160551