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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Speeding up Chinese character recognition in an automatic document reading system
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Speeding up Chinese character recognition in an automatic document reading system

机译:在自动文件阅读系统中加速汉字识别

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摘要

In this paper, we present two techniques for speeding up character recognition. Our character recognition system, including the candidate-cluster selection and modified branch-and-bound detail-matching modules, is implemented using two statistical features: crossing-counts and contour-direction counts. In the training stage, we divide characters into different clusters by using reference characters. To have a very high recognition rate, the candidate-cluster selection module selects the top 60 clusters with minimal distances from among 300 predefined clusters. To further speed-up the recognition speed, we use a modified branch-and-bound algorithm in the detail-matching module. In the automatic document reading system, characters and punctuation marks are first extracted from printed document images and sorted according to their positions and the document orientation. The system then recognizes all printed Chinese characters between pairs of punctuation marks. The results are then spoken aloud by a speech-synthesis system. The character recognition system and the text-to-speech synthesis system are integrated in the Windows-based document reading system, which provides a user-friendly environment. (C) 1998 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 21]
机译:在本文中,我们提出了两种加速字符识别的技术。我们的字符识别系统,包括候选群集选择和经过修改的分支定界细节匹配模块,是使用两个统计功能实现的:交叉计数和轮廓方向计数。在训练阶段,我们通过使用参考字符将字符分为不同的群集。为了具有很高的识别率,候选群集选择模块从300个预定义群集中选择距离最小的前60个群集。为了进一步加快识别速度,我们在详细信息匹配模块中使用了经过改进的分支定界算法。在自动文档读取系统中,首先从打印的文档图像中提取字符和标点符号,然后根据它们的位置和文档方向对其进行分类。然后,系统识别出标点符号对之间的所有已打印汉字。然后通过语音合成系统大声说出结果。字符识别系统和文本到语音合成系统集成在基于Windows的文档阅读系统中,该系统提供了用户友好的环境。 (C)1998模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:21]

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