SEGMENTATION-FREE ONLINE ARABIC HANDWRITING RECOGNITION

Author:

BIADSY FADI1,SAABNI RAID23,EL-SANA JIHAD2

Affiliation:

1. Computer Science, Columbia University, New York, NY 10027, USA

2. Computer Science, Ben-Gurion University of The Negev, Beer-Sheva, 84105, Israel

3. Triangle Research & Development Center, Kafr Qara, 30075, Israel

Abstract

Arabic script is naturally cursive and unconstrained and, as a result, an automatic recognition of its handwriting is a challenging problem. The analysis of Arabic script is further complicated in comparison to Latin script due to obligatory dots/stokes that are placed above or below most letters. In this paper, we introduce a new approach that performs online Arabic word recognition on a continuous word-part level, while performing training on the letter level. In addition, we appropriately handle delayed strokes by first detecting them and then integrating them into the word-part body. Our current implementation is based on Hidden Markov Models (HMM) and correctly handles most of the Arabic script recognition difficulties. We have tested our implementation using various dictionaries and multiple writers and have achieved encouraging results for both writer-dependent and writer-independent recognition.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

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