A Novel Approach for Stroke Extraction of Off-Line Chinese Handwritten Characters Based on Optimum Paths

J. Tan, J. Lai, Weishi Zheng, C. Suen
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引用次数: 2

Abstract

In recognition of Off-line handwritten characters and signatures, stroke extraction is often a crucial step. Given the large number of Chinese handwritten characters, pattern matching based on structural decomposition and analysis is useful and essential to Off-line Chinese recognition to reduce ambiguity. Two challenging problems for stroke extraction are: 1) how to extract primary strokes and 2) how to solve the segmentation ambiguities at intersection points. In this paper, we introduce a novel approach based on Optimum Paths(AOP) to solve this problem. Optimum Paths(AOP) are derived from the degree information and continuation property, we use them to tackle these two problems. Compared with other methods, the proposed approach has extracted strokes from Off-line Chinese handwritten characters with better performance.
一种基于最优路径的离线汉字笔画提取新方法
在离线手写字符和签名识别中,笔划提取通常是关键步骤。面对大量的手写体汉字,基于结构分解和分析的模式匹配是离线中文识别中减少歧义的必要手段。笔画提取的两个难题是:1)如何提取原始笔画;2)如何解决相交点的分割歧义。本文提出了一种基于最优路径(AOP)的新方法来解决这一问题。最优路径(AOP)是由度信息和连续性衍生出来的,我们用它们来解决这两个问题。与其他方法相比,该方法对离线汉字笔画进行了更好的提取。
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