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首页> 外文期刊>International Journal on Document Analysis and Recognition >Prototype learning for structured pattern representation applied to on-line recognition of handwritten Japanese characters
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Prototype learning for structured pattern representation applied to on-line recognition of handwritten Japanese characters

机译:用于结构化模式表示的原型学习应用于手写日语字符的在线识别

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摘要

This paper describes prototype learning for structured pattern representation with common sub-patterns shared among multiple character prototypes for on-line recognition of handwritten Japanese characters. Prototype learning algorithms have not yet been shown to be useful for structured or hierarchical pattern representation. In this paper, we incorporate cost-free parallel translation to negate the location distributions of subpatterns when they are embedded in character patterns. Moreover, we introduce normalization into a prototype learning algorithm to extract true feature distributions in raw patterns to aggregate distributions of feature points to subpattern prototypes. We show that our proposed method significantly improves structured pattern representation for Japanese on-line character patterns.
机译:本文介绍了用于结构化模式表示的原型学习,该结构化模式表示具有多个字符原型之间共享的公共子图案,用于手写日语字符的在线识别。原型学习算法尚未显示出对结构化或分层模式表示有用。在本文中,我们结合了无成本的并行翻译,以消除子模式嵌入字符模式时的位置分布。此外,我们将归一化引入原型学习算法中,以提取原始模式中的真实特征分布,以将特征点的分布聚集到子模式原型中。我们表明,我们提出的方法显着改善了日语在线字符模式的结构化模式表示。

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