DocumentCode :
2289083
Title :
Bag-of-keypoints approach for Tamil handwritten character recognition using SVMs
Author :
Subashini, A. ; Kodikara, N.D.
Author_Institution :
Comput. Unit, Univ. of Jaffna, Jaffna, Sri Lanka
fYear :
2011
fDate :
1-2 Sept. 2011
Firstpage :
102
Lastpage :
107
Abstract :
In this paper, the bag-of-keypoints approach for the off-line recognition of Tamil handwritten characters is investigated. Various pre-processing operations are performed on the digitised image to enhance the quality of an image. In the proposed method each pre-processed character image is represented by a set of local-invariant SIFT feature vectors. From a set of reference vectors, the key idea is to create a codebook for each character using K-means clustering algorithm. Then, the bag-of-keypoints are computed for the total number of character images. These features are used to train a linear support vector machine. A target character is predicted to exactly one of the twenty character classes. An average recognition rate of 81.62% on the character level has been achieved in experiments using six thousand training and two thousand testing images of twenty selected character classes. These results clearly demonstrate that the method produces good recognition accuracy on the handwritten Tamil character database and can be extended with more characters and more samples being recognised.
Keywords :
feature extraction; handwritten character recognition; image enhancement; pattern clustering; support vector machines; K-means clustering algorithm; Tamil handwritten character recognition; bag-of-keypoints approach; image enhancement; local-invariant SIFT feature vectors; scale invariant feature transform; support vector machines; Emotion recognition; Handwriting recognition; Image edge detection; Image segmentation; Mood; Random access memory; Training; Character Recognition; K-means; SIFT; Support Vector Machine; Tamil Handwritten characters;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advances in ICT for Emerging Regions (ICTer), 2011 International Conference on
Conference_Location :
Colombo
Print_ISBN :
978-1-4577-1113-8
Type :
conf
DOI :
10.1109/ICTer.2011.6075033
Filename :
6075033
Link To Document :
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