Arabic Character Extraction and Recognition using Traversing Approach

Arabic Character Extraction and Recognition

using Traversing Approach

Abdul Khader Saudagar and Habeeb Mohammed

College of Computer and Information Sciences, Al Imam Mohammad Ibn Saud Islamic University, Saudi Arabia

Abstract: The intention behind this research is to present an original work undertaken for Arabic character extraction and recognition for attaining higher percentage of recognition rate. Copious techniques for character, text extraction were proposed in earlier decades, but very few of them shed light on Arabic character set. From literature survey, it was found that 100% recognition rate is not attained by earlier proposed implementations. The proposed technique is novel and is based on traversing of the characters in a given text and marking their directions viz. North-South (NS), East-West (EW), North East-South West (NE-SW), North West-South East (NW-SE) etc., in an array and comparing them with the pre-defined codes of every character in the dataset. The experiments were conducted on Arabic news videos, documents taken from Arabic Printed Text Image (APTI) database and the results achieved from this research are very promising with a recognition rate of 98.1%. The proposed algorithm in this research work can replace the existing algorithms used in present Arabic Optical Character Recognition (AOCR) systems.

Keywords: Accuracy, arabic optical character recognition and text extraction.

Received March 14, 2015; accepted August 16, 2015
 
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