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Online Arabic Handwriting Recognition Using Hidden Markov Models

Domain:

natural language processing

Record type:

papersoftware
Creator:
BiaEl-Hab
Editor:
DepDepCenUni
Publisher:
CCSDSuv
Host:avatar
suvisoft.com Online handwriting recognition of Arabic script is a difficult problem since it is naturally both cursive and unconstrained. 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. This paper introduces a Hidden Markov Model (HMM) based system to provide solutions for most of the difficulties inherent in recognizing Arabic script including: letter connectivity, position-dependent letter shaping, and delayed strokes. This is the first HMM-based solution to online Arabic handwriting recognition. We report successful results for writerdependent and writer-independent word recognition.