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    • UNIR REVISTAS
    • Revista IJIMAI
    • 2017
    • vol. 4, nº 4, june 2017
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    • UNIR REVISTAS
    • Revista IJIMAI
    • 2017
    • vol. 4, nº 4, june 2017
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    Handwritten Character Recognition Based on the Specificity and the Singularity of the Arabic Language

    Autor: 
    Boulid, Youssef
    ;
    Souhar, Abdelghani
    ;
    Elyoussfi Elkettani, Mohamed
    Fecha: 
    06/2017
    Palabra clave: 
    text classification; feature extraction; arabic documents; handwritten character recognition; IJIMAI
    Tipo de Ítem: 
    article
    URI: 
    https://reunir.unir.net/handle/123456789/11755
    DOI: 
    http://doi.org/10.9781/ijimai.2017.446
    Dirección web: 
    https://ijimai.org/journal/bibcite/reference/2605
    Open Access
    Resumen:
    A good Arabic handwritten recognition system must consider the characteristics of Arabic letters which can be explicit such as the presence of diacritics or implicit such as the baseline information (a virtual line on which cursive text are aligned and/join). In order to find an adequate method of features extraction, we have taken into consideration the nature of the Arabic characters. The paper investigate two methods based on two different visions: one describes the image in terms of the distribution of pixels, and the other describes it in terms of local patterns. Spatial Distribution of Pixels (SDP) is used according to the first vision; whereas Local Binary Patterns (LBP) are used for the second one. Tested on the Arabic portion of the Isolated Farsi Handwritten Character Database (IFHCDB) and using neural networks as a classifier, SDP achieve a recognition rate around 94% while LBP achieve a recognition rate of about 96%.
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