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Knowledge model based approach in recognition of on-line Chinese characters

机译:基于知识模型的在线汉字识别方法

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摘要

A knowledge model-based OCR system is presented for the recognition of on-line connected stroke Chinese characters. In the approach, segment attributes are first extracted to characterize the segment sequence of an unknown character. Next, radical recognition based on model matching is adopted as the coarse classification to reduce the number of candidate characters before detailed matching. Finally, a deviation modeling method is proposed to recognize not only regular writing characters but also characters with stroke-order and stroke-number deviations. The effectiveness of the approach is verified by experiments on the recognition of on-line Chinese characters.
机译:提出了一种基于知识模型的OCR系统,用于在线笔画汉字的识别。在该方法中,首先提取段属性以表征未知字符的段序列。接下来,采用基于模型匹配的部首识别作为粗略分类,以减少详细匹配之前的候选字符数。最后,提出了一种偏差建模方法,该方法不仅可以识别常规书写字符,而且可以识别具有笔划顺序和笔划数偏差的字符。通过在线汉字识别的实验验证了该方法的有效性。

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