形状分析模型及其在字符识别系统中的应用

J. Rocha, T. Pavlidis
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引用次数: 173

摘要

提出了一种多字体印刷汉字的识别方法,重点是利用原型识别汉字形状的结构描述。噪声和形状变化被建模为一系列从数据中的特征组到每个原型中的特征的转换。因此,该方法系统地管理候选形状与其原型之间的相对失真,平均而言,每个类的原型少于两个,从而实现对噪声的鲁棒性。我们的方法使用组件之间的灵活匹配和要匹配的单个组件的灵活分组。定义了许多形状变换。此外,还给出了这些变换引起的失真量的度量。字符形状的分类问题被定义为将输入形状映射到原型形状的各种可能变换之间的优化问题。一些手印数字的测试证实了该方法的高鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A shape analysis model with applications to a character recognition system
A method for the recognition of multifont printed characters is proposed, giving emphasis to the identification of structural descriptions of character shapes using prototypes. Noise and shape variations are modeled as series of transformations from groups of features in the data to features in each prototype. Thus, the method manages systematically the relative distortion between a candidate shape and its prototype, accomplishing robustness to noise with less than two prototypes per class, on the average. Our method uses a flexible matching between components and a flexible grouping of the individual components to be matched. A number of shape transformations are defined. Also, a measure of the amount of distortion that these transformations cause is given. The problem of classification of character shapes is defined as a problem of optimization among the possible transformations that map an input shape into prototypical shapes. Some tests with hand printed numerals confirmed the method's high robustness level.<>
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