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A Handwritten Chinese Character Recognition Method Combining Sub-structure Recognition

机译:结合子结构识别的手写汉字识别方法

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Many Chinese characters are composed of sub-structures. Extracting and recognizing radicals or sub-structures are benefit to character recognition. This paper proposed a new handwritten Chinese character recognition method combining sub-structure recognition. Firstly, a density-based clustering method is adopted to find sub-structure patterns in sub-structure pattern discovering. Secondly, for multiple sub-structure characters, the single Chinese character recognition problem is converted to a sub-structure string recognition problem. By searching the most matched sub-structure string pattern to a character, the additional character recognition candidates are obtained. These candidates and the single character recognition results are combined to yield the final character recognition result. Experiment results on CASIA dataset show that this work is effective on improving handwritten Chinese character recognition as well as sub-structure pattern discovering.
机译:许多汉字由子结构组成。提取和识别部首或子结构有利于字符识别。提出了一种结合子结构识别的手写汉字识别新方法。首先,在子结构模式发现中,采用基于密度的聚类方法寻找子结构模式。其次,对于多个子结构字符,将单个汉字识别问题转换为子结构字符串识别问题。通过将最匹配的子结构字符串模式搜索到一个字符,可以获得其他字符识别候选。这些候选者和单个字符识别结果被组合以产生最终的字符识别结果。在CASIA数据集上的实验结果表明,这项工作对于改善手写汉字识别以及子结构模式发现是有效的。

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