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Study on an approach of feature selection for similar handwritten Chinese characters recognition

机译:相似手写汉字识别的特征选择方法研究

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A feature selection approach for similar handwritten Chinese characters recognition is presented in this paper, which is based on genetic algorithms and support vector machines classifier. The technique of combining wavelet transform with elastic meshing is employed for a given handwritten character to extract its feature. The optimal features are selected by genetic algorithms and the problem of determining partial space of similar characters automatically is solved. The experiment results confirm the conclusion that the generalization performance of cross-validation fitness measure is better than that of in-sample validation one.
机译:提出了一种基于遗传算法和支持向量机分类器的相似手写汉字识别的特征选择方法。将小波变换与弹性网格划分相结合的技术用于给定的手写字符以提取其特征。通过遗传算法选择最佳特征,解决了自动确定相似字符局部空间的问题。实验结果证实了以下结论:交叉验证适应性测度的泛化性能优于样本验证中的泛化性能。

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