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Neural Networks for Lampung Characters Handwritten Recognition

机译:楠榜字符手写识别的神经网络

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Character recognition technique associates a symbolic identity with the image of a character. Different characters and languages have different structures and features. Lampung character and language are different with any other languages. We have developed Lampung handwritten character recognition using back-propagation neural networks. However since some Lampung characters have similar features, hierarchical network system was performed to optimize the training and recognition algorithm. The experiment results give reasonable results of the recognition rate for the training set. 86.5% of basic characters and more than 97% for characters with tone marks can be recognized.
机译:字符识别技术将符号身份与字符图像相关联。不同的字符和语言具有不同的结构和特征。楠榜的字符和语言与任何其他语言都不同。我们使用反向传播神经网络开发了Lampung手写字符识别。但是,由于某些楠榜字符具有相似的功能,因此执行了分层网络系统以优化训练和识别算法。实验结果为训练集的识别率提供了合理的结果。可以识别86.5%的基本字符和超过97%的带色调标记的字符。

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