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Cut Digits Classification with k-NN Multi-specialist

Identifieur interne : 001092 ( Main/Exploration ); précédent : 001091; suivant : 001093

Cut Digits Classification with k-NN Multi-specialist

Auteurs : Fernando Boto [Espagne] ; Andoni Cortés [Espagne] ; Clemente Rodríguez [Espagne]

Source :

RBID : ISTEX:FB9D80803DAFF20382918EEE4B2A8CE3E647D2D0

Abstract

Abstract: A multi-classifier formed by specialised classifiers for noise produced by an image is shown in this work. A study has been carried out in the case of cut images, where tree cases of specialization are considered. Classifiers based on neighbourhood criteria are used, the zoning global feature and the Euclidean distance too. Furthermore, the paper explains a modification of the Euclidean distance for classifying cut digits. The experiments have been carried out with images of typewritten digits, taken from real forms. Trying to obtain a strong database to support the experiments, we have cut images deliberately. The recognition rate improves from 84.6% to 97.70%, but whether the system provides information about the disturbance of the image, it can achieve a 98.45%.

Url:
DOI: 10.1007/11669487_44


Affiliations:


Links toward previous steps (curation, corpus...)


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