DocumentCode :
1864526
Title :
OCRMPD: OCR system for Myanmar printed document image with a novel segmentation method and hierarchical classification scheme
Author :
Win, Htwe Pa Pa ; Khine, Phyo Thu Thu ; Tun, Khin Nwe Ni
Author_Institution :
Univ. of Comput. Studies, Yangon, Myanmar
fYear :
2011
fDate :
25-27 Aug. 2011
Firstpage :
285
Lastpage :
291
Abstract :
As large quantity of document images is getting archived by the digital libraries, an efficient strategy that can convert Myanmar document image into machine understandable text format is needed. And Myanmar language contains many words, and most of them are similar, especially for small fonts, the accuracy of the Optical Character Recognition, OCR system for Myanmar may be low. Therefore, this paper designs an OCR system for Myanmar Printed Document (OCRMPD) with several proposed methods that can automatically convert Myanmar printed text to machine understandable text. In order to get more accurate system, enhance the input image by removing noise and making some correction on variants. A method for isolation of the character image is proposed by using connected component analysis for wrongly segmented characters produced by projection only. Finally, hierarchical mechanism is used for SVM classifier for recognition of the character image. The proposed algorithms have been tested on a variety of Myanmar printed documents and the results of the experiments indicate that the methods can increase the segmentation accuracy as well as recognition rates.
Keywords :
digital libraries; document image processing; image classification; image denoising; image segmentation; language translation; natural language processing; optical character recognition; support vector machines; text analysis; Myanmar language; Myanmar printed text conversion; OCR system for Myanmar printed document image; OCRMPD image; SVM classifier; character image recognition; digital library; hierarchical classification scheme; image segmentation method; machine understandable text format; noise removal; optical character recognition; Accuracy; Character recognition; Feature extraction; Image segmentation; Optical character recognition software; Support vector machines; Text recognition; Myanmar scripts; OCR; OCRMPD; Support vector machine; machine printed;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Computer Communication and Processing (ICCP), 2011 IEEE International Conference on
Conference_Location :
Cluj-Napoca
Print_ISBN :
978-1-4577-1479-5
Electronic_ISBN :
978-1-4577-1481-8
Type :
conf
DOI :
10.1109/ICCP.2011.6047882
Filename :
6047882
Link To Document :
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