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Recognition of Typewritten Characters Using Hidden MarkovModels

机译:使用隐马尔可夫模型的打字字符识别

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This paper presents a typewritten characters recognition system using Hidden Markov Model (HMM). Character recognition systems convert images of printed, typewritten or handwritten documents into computer readable texts that can be easily edited or searched. Character recognition for typewritten documents is however difficult due to broken edges, touching characters, shape variance, skewing, and heavy printing resulting from the typewriter impact. Three documents (old memo, old war letter and newly typewritten essay) were used to create three datasets of typewritten characters each consisting of 1995, 702 and 2049 characters respectively. The research result showed that, recognition accuracy values are 94.88%, 91.45% and 97.24% for old memo, old war letter and newly typewritten essay datasets respectively. Hence, HMM is an efficient method that can be employed to recognise typewritten documents.
机译:本文提出了一种使用隐马尔可夫模型(HMM)的打字字符识别系统。字符识别系统将打印,打字或手写文档的图像转换为可以轻松编辑或搜索的计算机可读文本。但是,由于打字机撞击导致的折边,触摸字符,形状变化,歪斜和沉重的印刷,因此难以识别打字文档的字符。使用三个文档(旧备忘录,旧战信和新打字论文)来创建三个打字字符数据集,每个数据集分别由1995、702和2049个字符组成。研究结果表明,旧备忘录,旧战信和新打字论文数据集的识别准确率分别为94.88%,91.45%和97.24%。因此,HMM是可用于识别打字文档的有效方法。

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