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Printed Arabic Character Recognition Using HMM

机译:使用HMM的印刷阿拉伯字符识别

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The Arabic Language has a very rich vocabulary. More than 200 million people speak this language as their native speaking, and over 1 billion people use it in several religion-related activities. In this paper a new technique is presented for recognizing printed Arabic characters. After a word is segmented, each character/word is entirely transformed into a feature vector. The features of printed Arabic characters include strokes and bays in various directions, endpoints, intersection points, loops, dots and zigzags. The word skeleton is decomposed into a number of links in orthographic order, and then it is transferred into a sequence of symbols using vector quantization. Single hidden Markov model has been used for recognizing the printed Arabic characters. Experimental results show that the high recognition rate depends on the number of states in each sample.
机译:阿拉伯语的词汇非常丰富。超过2亿人说这种语言作为他们的母语,还有10亿多人在与宗教有关的各种活动中使用这种语言。本文提出了一种新的识别印刷阿拉伯字符的技术。分割单词后,每个字符/单词将完全转换为特征向量。印刷的阿拉伯字符的特征包括不同方向的笔触和空格,端点,交点,循环,点和曲折。单词骨架按拼写顺序分解为许多链接,然后使用矢量量化将其转换为符号序列。单个隐马尔可夫模型已用于识别印刷的阿拉伯字符。实验结果表明,高识别率取决于每个样本中的状态数。

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