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AuthorAl-Maadeed, Somaya
Available date2022-05-19T10:23:16Z
Publication Date2012
Publication NameJournal of Electrical and Computer Engineering
ResourceScopus
Identifierhttp://dx.doi.org/10.1155/2012/794106
URIhttp://hdl.handle.net/10576/31168
AbstractThis paper proposes a system for text-dependent writer identification based on Arabic handwriting. First, a database of words was assembled and used as a test base. Next, features vectors were extracted from writers' word images. Prior to the feature extraction process, normalization operations were applied to the word or text line under analysis. In this work, we studied the feature extraction and recognition operations of Arabic text on the identification rate of writers. Because there is no well-known database containing Arabic handwritten words for researchers to test, we have built a new database of offline Arabic handwriting text to be used by the writer identification research community. The database of Arabic handwritten words collected from 100 writers is intended to provide training and testing sets for Arabic writer identification research. We evaluated the performance of edge-based directional probability distributions as features, among other characteristics, in Arabic writer identification. Results suggest that longer Arabic words and phrases have higher impact on writer identification.
Languageen
PublisherHindawi Publishing Corporation
SubjectArabic handwriting
Arabic texts
Edge-based
Feature extraction and recognition
Features vector
Handwritten words
Identification rates
Offline
Research communities
Text lines
Training and testing
Word images
Writer identification
Feature extraction
Probability distributions
Research
Database systems
TitleText-dependent writer identification for arabic handwriting
TypeArticle


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