相似汉字的多层投影分类

Kai Wang, Y. Tang, C. Suen
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引用次数: 10

摘要

提出了一种汉字特征提取算法。这些特征由多层环形分区得到的投影的傅立叶谱组成。该方法考虑了汉字的方形特征,提取的特征包含了汉字不同部位的重要信息,对旋转和线性位移不敏感。实验中,从使用频率最高的汉字中选取了97个相似的汉字。根据形状的相似性,将这些汉字分为34类。使用了三种不同的汉字字体(宋体、楷体和粗体)。为了研究字符对称对算法的影响,还加入了四个额外的符号。实验结果表明,对于任意位移和(-180度,+180度)范围内的旋转,该方法都能准确地分离出所有相似汉字,包括繁体字。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-layer projections for the classification of similar Chinese characters
An algorithm is presented of extracting features from Chinese characters. These features consist of the Fourier spectrum of projections obtained from multiple-layers of annular partitions. This method takes into consideration the square shape of Chinese characters to that the extracted features contain the significant information of the different parts of the character, and are insensitive to rotation and linear displacement. For the experiments, 97 similar Chinese characters were selected from the most frequently used characters. These characters were divided into 34 groups according to similarity in shape. Three different fonts of Chinese characters (Song, Kai and Bold face) were used. Four additional symbols were also included to study the effects of character symmetry on the proposed algorithm. Experimental results indicate that for any displacement and for rotations in the range of (-180 degrees , +180 degrees ), this method can separate without exception all similar Chinese characters including the complex ones.<>
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