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Offline handwritten Uighur character recognition based on grapheme analysis

机译:基于石墨对分析的离线手写的维吾尔族人物识别

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摘要

Handwritten Uighur characters contain a lot of small and random writing strokes, which make character recognition more complicated. For 128 Uighur characters, an efficient offline handwriting recognition algorithm based on grapheme (part of a character) analysis is proposed in this paper. Firstly, by dot stroke detection and component analysis, 128 character models are established by decomposing the Uighur characters as three type graphemes: dot, affix and main graphemes. Secondly, the Uighur characters are pre-classified into 12 subclasses through their grapheme compositions. Finally, different classifiers are designed for various types of graphemes. With the fusion coefficients of graphemes estimated, the character recognition result is given by fusing the graphemes classification outputs using the weighted naive Bayesian algorithm. Experimental results show that the algorithm can effectively identify the 128 unconstrained handwritten Uyghur characters.
机译:手写的维吾尔族人物包含很多小而随机的写作笔画,使字符识别更加复杂。对于128个UIGEUR字符,本文提出了一种基于Rapareme(角色的一部分)分析的高效离线手写识别算法。首先,通过DOT行程检测和分量分析,通过将UIIGES字符分解为三种类型的图形来建立128个字符的模型:点,粘贴和主图案。其次,通过其图形组合物预先分类为12个子类。最后,不同的分类器专为各种类型的图形设计。利用图案的融合系数估计,通过使用加权Naive贝叶斯算法融合图形分类输出来给出字符识别结果。实验结果表明,该算法可以有效地识别128个不受约束的手写维吾尔字符。

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