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Accented Handwritten Character Recognition Using SVM - Application to French

机译:使用svm的突出的手写字符识别 - 法语应用程序

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This paper deals with the problem of recognizing accented and non-accented characters in French handwriting. Accented characters increase the number of classes to be recognized. The performances of powerful classifier such as SVM are declined by the presence of accents. In this paper, an accented character is segmented into two parts: the root character or letter and the accent. These two parts are recognized separately, and the results are combined to rebuild the accented character. This approach avoids the combination of characters and accents that causes an increase in the number of classes to be considered. For handwritten character recognition, the combination of on-line and off-line features is used. The paper illustrates that French accented and non-accented characters and digits can be described by a combination of this kind of data. Moreover, the number of features of the combination is not necessarily very high. The experimental investigations show that the handwritten character recognition built on 45 selected features can compete with recognition rate and response time of other well known tested on standard databases such as UNIPEN and IRONOFF.
机译:本文涉及在法国手写中识别重音和非重视字符的问题。重音字符增加要识别的课程数量。强大的分类器的性能如SVM的存在因子被抑制。在本文中,重音字符被分为两部分:根字符或字母和重音。这两个部分被单独识别,结果组合以重建重音字符。这种方法避免了角色和复缀的组合,从而导致要考虑的类数量的增加。对于手写字符识别,使用在线和离线功能的组合。本文说明了这种数据的组合可以描述法国重音和非重音字符和数字。此外,组合的特征的数量不一定非常高。实验研究表明,建立在45个选定的特征上的手写字符识别可以竞争其他众所周知的标准数据库等其他众所周知的响应时间,例如Unipen和Ironoff。

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