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Window-Based Descriptors for Arabic Handwritten Alphabet Recognition: A Comparative Study on a Novel Dataset (1411.3519v2)

Published 13 Nov 2014 in cs.CV

Abstract: This paper presents a comparative study for window-based descriptors on the application of Arabic handwritten alphabet recognition. We show a detailed experimental evaluation of different descriptors with several classifiers. The objective of the paper is to evaluate different window-based descriptors on the problem of Arabic letter recognition. Our experiments clearly show that they perform very well. Moreover, we introduce a novel spatial pyramid partitioning scheme that enhances the recognition accuracy for most descriptors. In addition, we introduce a novel dataset for Arabic handwritten isolated alphabet letters, which can serve as a benchmark for future research.

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Authors (5)
  1. Marwan Torki (11 papers)
  2. Mohamed E. Hussein (14 papers)
  3. Ahmed Elsallamy (2 papers)
  4. Mahmoud Fayyaz (2 papers)
  5. Shehab Yaser (1 paper)
Citations (34)

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