DocumentCode :
3244225
Title :
A neuro-heuristic approach for segmenting handwritten Arabic text
Author :
Hamid, Alaa ; Haraty, Ramzi
Author_Institution :
American Univ. of Beirut, Lebanon
fYear :
2001
fDate :
2001
Firstpage :
110
Lastpage :
113
Abstract :
The segmentation and recognition of Arabic handwritten text has been an area of great interest in the past few years. However, only a small number of research papers and reports have been published in this area, due to the difficult problems associated with Arabic handwritten text processing. In this work, a technique is presented that segments handwritten Arabic text. A conventional algorithm is used for the initial segmentation of the text into connected blocks of characters. The algorithm then generates pre-segmentation points for these blocks. A neural network is subsequently used to verify the accuracy of these segmentation points. Two major problems were encountered. First, although the segmentation phase proved to be successful in the vertical segmentation of connected blocks of characters, it couldn´t segment characters that were overlapping horizontally. Second, segmentation of handwritten Arabic text depends largely on contextual information, and not just on topographic features extracted from the characters
Keywords :
handwritten character recognition; heuristic programming; image segmentation; neural nets; accuracy verification; connected character blocks; contextual information; handwritten Arabic text segmentation; handwritten text recognition; horizontally overlapping characters; neural network; neuro-heuristic approach; pre-segmentation points; topographic feature extraction; vertical segmentation; Artificial neural networks; Data mining; Feature extraction; Handwriting recognition; Indexes; Neural networks; Pixel; Shape; Text processing; Text recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Systems and Applications, ACS/IEEE International Conference on. 2001
Conference_Location :
Beirut
Print_ISBN :
0-7695-1165-1
Type :
conf
DOI :
10.1109/AICCSA.2001.933960
Filename :
933960
Link To Document :
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