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联机手写体汉字识别后处理技术的研究
引用本文:徐志明,王晓龙,张凯,关毅. 联机手写体汉字识别后处理技术的研究[J]. 计算机研究与发展, 1999, 36(5): 608-612
作者姓名:徐志明  王晓龙  张凯  关毅
作者单位:哈尔滨工业大学计算机科学与技术系,香港理工大学计算机系
基金项目:国家“八六三”高技术计划基金
摘    要:文中提出了一种规则和统计相结合的计算语言模型应用于联机手写体汉字识别后处理的技术,把基于统计的大词表Markov语言模型与语言规则量化模型,通过词网格技术集成在一个语言解码器,这种后处理方法由3个阶段组成,词网格生成,语言解码,基于Cache的自学习机制,语言解码器采用Viterbi搜索算法求解最优语句候选,该项技术已应用于HPC(手持机)手写电脑的联机汉字手写体识别系统中,汉字识别率为91.3%

关 键 词:联机手写体汉字 汉字识别 后处理 计算机

A POST PROCESSING METHOD FORONLINE HANDWRITTENCHINESE CHARACTER RECOGNITION
XU Zhi|Ming,WANG Xiao|Long,ZHANG Kai,and GUAN Yi. A POST PROCESSING METHOD FORONLINE HANDWRITTENCHINESE CHARACTER RECOGNITION[J]. Journal of Computer Research and Development, 1999, 36(5): 608-612
Authors:XU Zhi|Ming  WANG Xiao|Long  ZHANG Kai  and GUAN Yi
Abstract:Proposed in the paper here is a new post processing method integrating the rulebased grammar and the Markov language model for online handwritten Chinese character recognition. The Markov language model and the quantification rules model are bound to a linguistic decoder by word lattice. The post processing kernel engine consists of three stages: word lattice formation, linguistic decoder,and cache|based self|learning mechanism. The linguistic decoder adopts Viterbi search algorithm to search the best sentence hypothesis. The introduced technique has been applied to HPCs online handwritten Chinese character recognition,with a recognition accuracy rate of 91.3% achieved.
Keywords:Markov language model   word lattice   online handwritten Chinese character recognition  
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