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Personal Dictionaries for Handwritten Character Recognition Using Characters Written by a Similar Writer

机译:手写字符识别的个人词典使用类似作者写的字符

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We propose two new generation methods of personal dictionary for handwritten character recognition using the set of characters written by a similar writer. The methods employ only one character written by one specific writer, and its character selects the set of characters written by the similar writer to generate the personal dictionary for the specific writer. The first type (similar mean) dictionary uses the mean feature vector of a similar writer which is selected by only one specific writer’s character. The second type (similar feature space) dictionary uses the mean feature vector and the covariance matrix of the selected similar writer. We compared the effect for handwritten Japanese “HIRAGANA” characters. The similar feature space dictionary obtained the recognition rate 91% relatively to the rate of a general dictionary 82 %. It is confirmed that only one character by a specific writer is very effective on personal character recognition.
机译:我们提出了使用由类似作者写入的字符集的手写字符识别的两个新一代的个人字典方法。该方法仅使用一个特定编写器写入的一个字符,其字符选择由类似作者编写的字符集,以生成特定编写器的个人字典。第一类型(类似平均值)字典使用了仅由一个特定作者的字符选择的类似作者的平均特征向量。第二类型(类似的特征空间)字典使用所选择的类似作者的平均特征向量和协方差矩阵。我们比较了手写日本“平假名”人物的效果。与一般字典82%的速率相比,获得了类似的特征空间字典91%。确认,特定作者只有一个字符对个人字符识别非常有效。

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