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ANALYSIS OF PROPOSED TECHNIQUE FOR GRAPHICAL REPRESENTATION OF ISOLATED CHARACTER USING SVM CLASSIFIER

Journal: International Journal of Engineering Sciences & Research Technology (IJESRT) (Vol.5, No. 11)

Publication Date:

Authors : ; ;

Page : 430-437

Keywords : SVM Classifier; Global Transformation; Feature Extraction; SINDHI Character Set; Optical Character Recognition (OCR);

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Abstract

A graphical representation is a visual display of data and statistical results. It is more often and effective than presenting data in tabular form. Opti cal Character Recognition (OCR) requires a graphical representation of text to interpret, which usually comes from a scanned image. Support Vector Machine (SVM) describes the concept that how the decision planes are made which helps in defining the decisio n boundaries. In this paper a method of isolated graphical representation has been proposed using SVM Classifier. The performance is measured in the terms of accuracy using different font styles and font sizes. The work is done on Sindhi Character Set. The result shows the accuracy recognition rate achieved with SVM Classifier is much better than existing Global Transformation and Feature Extraction Techniques.

Last modified: 2016-11-18 19:45:45