Offline handwritten Chinese character recognition via radical extraction and recognition

Wilson W. S. Ip, K. F. Chung, D. Yeung
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引用次数: 13

Abstract

Despite the fact that Chinese characters are composed of radicals and that Chinese people usually formulate their knowledge of Chinese characters as a combination of radicals, very few studies have focused on a character decomposition approach to recognition, i.e., recognizing a character by first extracting and recognizing its radicals. Such an approach is adopted and the problem of how to extract radical sub-images from character images is particularly addressed. A radical extraction algorithm based on deformable templates (DTs) has been developed. The advantage of the character decomposition approach is demonstrated by feeding the extracted radical images to an adopted structural based Chinese character recognizer whose outputs are then combined to produce the class label of the input character. Simulation results show that the performance of the adopted Chinese character recognition system can be improved significantly when the character decomposition approach is used.
离线手写体汉字识别,基于词根提取和识别
尽管汉字是由部首组成的,而且中国人对汉字的认识通常是由部首组合而成的,但很少有研究关注汉字分解识别方法,即先提取并识别汉字的部首来识别汉字。采用这种方法,重点解决了如何从字符图像中提取激进子图像的问题。提出了一种基于可变形模板(DTs)的自由基提取算法。通过将提取的根式图像馈送到所采用的基于结构的汉字识别器中,然后将其输出组合生成输入字符的类标号,证明了字符分解方法的优点。仿真结果表明,采用字符分解方法可以显著提高汉字识别系统的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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