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首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >LEARNING TO RECOGNIZE HAND-PRINTED CHINESE CHARACTERS USING INDUCTIVE LOGIC PROGRAMMING
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LEARNING TO RECOGNIZE HAND-PRINTED CHINESE CHARACTERS USING INDUCTIVE LOGIC PROGRAMMING

机译:使用归纳逻辑程序设计识别手写汉字的学习

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摘要

Recognition of Chinese characters has been a major interest of researchers for many years, and a large number of research papers and reports have already been published in this area. There are several major problems: Chinese characters are distinct and ideographic, the character size is very large and a lot of structurally similar characters exist in the character set. Thus, classification criteria are difficult to find. This paper presents a new technique for the recognition of hand-printed Chinese characters using machine learning. Conventional methods have relied on hand-constructed dictionaries which are tedious to construct and difficult to make tolerant to variations in writing styles. The advantages of machine learning are twofold: it can generalize over the large degree of variations between writing styles and recognition rules can be constructed by example. The paper also describes three methods of feature extraction for Chinese character recognition: regular expression, dominant point and modified Hough transform. These methods are then compared in terms of accuracy and efficiency.
机译:多年来,识别汉字一直是研究人员的主要兴趣,并且在该领域已经发表了大量研究论文和报告。存在几个主要问题:汉字区别和表意,字符大小很大,并且字符集中存在许多结构相似的字符。因此,很难找到分类标准。本文提出了一种利用机器学习识别手印汉字的新技术。常规方法依靠手工构建的词典,这些词典构建起来很繁琐并且难以容忍书写风格的变化。机器学习的优点是双重的:它可以概括写作风格之间的很大差异,并且可以通过示例构造识别规则。本文还描述了三种用于汉字识别的特征提取方法:正则表达式,优势点和改进的Hough变换。然后根据准确性和效率比较这些方法。

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