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A progressive learning method for symbols recognition
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Source Symposium on Applied Computing archive
Proceedings of the 2007 ACM symposium on Applied computing table of contents
Seoul, Korea
SESSION: Document engineering table of contents
Pages: 627 - 631  
Year of Publication: 2007
ISBN:1-59593-480-4
Authors
Sabine Barrat  LORIA - Université Nancy, Vandoeuvre-les-Nancy Cedex, France
Salvatore Tabbone  LORIA - Université Nancy, Vandoeuvre-les-Nancy Cedex, France
Sponsor
SIGAPP: ACM Special Interest Group on Applied Computing
Publisher
ACM  New York, NY, USA
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ABSTRACT

This paper deals with a progressive learning method for symbols recognition which improves its own recognition rate when new symbols are recognized in graphics documents. We propose a discriminant analysis method which provides allocation rules from learning samples with known classes. However a discriminant analysis method is efficient only if learning samples and data are defined in the same conditions but it is rare in real life. In order to overcome this problem, a conditional vector is added to each observation to take into account the parasitic effects between the data and the learning samples. We propose also an adaptation to consider the user feedback.


REFERENCES

Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.

 
1
S. Adam, J. Ogier, C. Cariou, R. Mullot, J. Labiche, and J. Gardes. Symbol and character recognition: application to engineering drawings. International Journal on Document Analysis and Recognition, 3(2), 2001.
 
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A. Baccini, H. Caussinus, and A. Ruiz-Gazen. Apprentissage progressif en analyse discriminante. Revue de Statistique Appliquée, 49, 2001.
 
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E. Valveny and P. Dosch. Symbol recognition contest : A synthesis. In Graphics Recognition -- Algorithms and Applications, volume 3088 of lecture notes in computer science. 2004.

Collaborative Colleagues:
Sabine Barrat: colleagues
Salvatore Tabbone: colleagues