Form Analysis by Neural Classification of Cells

Yolande Belaïd 1 Jean Luc Panchèvre 2 Abdel Belaïd 1
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LORIA - Laboratoire Lorrain de Recherche en Informatique et ses Applications
Abstract : Our aim in this paper is to present a methodology for linearly combining multi neural classifier for cell analysis of forms. Features used for the classification are relative to the text orientation and to its character morphology. Eight classes are extracted among numeric, alphabetic, vertical, horizontal, capitals, etc. Classifiers are multi-layered perceptrons considering firstly global features and refining the classification at each step by looking for more precise features. The recognition rate of the classifiers for 3. 500 cells issued from 19 forms is about 91 %.
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Communication dans un congrès
S. W. Lee & Y. Nakano. Third IAPR Workshop on Document Analysis Systems, 1998, Nagano, Japan, IAPR, 1998
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Soumis le : mardi 27 février 2007 - 14:08:31
Dernière modification le : mardi 24 avril 2018 - 13:34:56
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Yolande Belaïd, Jean Luc Panchèvre, Abdel Belaïd. Form Analysis by Neural Classification of Cells. S. W. Lee & Y. Nakano. Third IAPR Workshop on Document Analysis Systems, 1998, Nagano, Japan, IAPR, 1998. 〈inria-00098513〉

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