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Character Independent Font Recognition on a Single Chinese Character

机译:单个汉字的字符独立字体识别

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摘要

A novel algorithm for font recognition on a single unknown Chinese character, independent of the identity of the character, is proposed in this paper. We employ a wavelet transform on the character image and extract wavelet features from the transformed image. After a Box-Cox transformation and LDA (linear discriminant analysis) process, the discriminating features for font recognition are extracted and classified through a MQDF (Modified quadric distance function) classifier with only one prototype for each font class. Our experiments show that our algorithm can achieve a recognition rate of 90.28 percent on a single unknown character and 99.01 percent if five characters are used for font recognition. Compared with existing methods, all of which are based on a text block, our method can provide a higher recognition rate and is more flexible and robust, since it is based on a single unknown character. Additionally, our method demonstrates that it is possible to extract subtle yet discriminative signals embedded in a much larger noisy background
机译:提出了一种新的识别单个未知汉字的字体的算法,该算法与汉字的身份无关。我们对字符图像进行小波变换,并从变换后的图像中提取小波特征。经过Box-Cox变换和LDA(线性判别分析)过程后,通过MQDF(改进的二次距离函数)分类器提取并识别字体识别的区别特征,每个字体类别只有一个原型。我们的实验表明,我们的算法对单个未知字符的识别率可以达到90.28%,如果使用五个字符进行字体识别,则可以达到99.01%。与全部基于文本块的现有方法相比,我们的方法可以提供更高的识别率,并且更加灵活和健壮,因为它基于单个未知字符。此外,我们的方法表明,有可能提取嵌入在更大噪声背景中的微妙而有区别的信号

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