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RECOGNITION OF ON-LINE CURSIVE KOREAN CHARACTERS COMBINING STATISTICAL AND STRUCTURAL METHODS

机译:统计和结构方法相结合的在线韩语字符识别

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摘要

In this paper, we propose a hybrid recognition method, and show its usefulness in recognizing online cursive Korean characters. A finite state network is constructed to represent the rules of character composition from graphemes. In the network, each are and node expands into statistical and structural recognizers, respectively. The statistical recognizer produces intermediate recognition results in traditional hidden Markov modeling, then the structural recognizer analyzes them. The results from two recognizers are combined in a probabilistic framework complementing the Markov assumption of hidden Markov modeling. The experimental results showed significant performance improvements in error reduction and computation time as compared to the statistical approach alone. (C) 1997 Pattern Recognition Society. Published by Elsevier Science Ltd. [References: 18]
机译:在本文中,我们提出了一种混合识别方法,并展示了其在识别在线草书韩文字符中的有用性。构造了一个有限状态网络来表示字素的字符组成规则。在网络中,每个are和node分别扩展为统计和结构识别器。统计识别器在传统的隐马尔可夫模型中产生中间识别结果,然后结构识别器对其进行分析。来自两个识别器的结果被组合在一个概率框架中,该框架补充了隐马尔可夫建模的马尔可夫假设。与单独的统计方法相比,实验结果显示出在减少错误和减少计算时间方面的显着性能改进。 (C)1997模式识别学会。由Elsevier Science Ltd.发布[参考文献:18]

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