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Artificial Neural Network Based Sinhala Character Recognition

机译:基于人工神经网络的僧侣字符识别

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Sinhala is the main language spoken by the majority of the population of Sri Lanka. There is a clear need for an optical character recognition (OCR) system for the Sinhala language. However, the language contains very similar characters, which makes it very difficult to distinguish them except on feature analysis. The character recognition rates of previous systems proposed for Sinhala character recognition are low, and so further improvement is needed. Consequently, in this paper, we propose a new Sinhala character recognition method that uses character geometry features and artificial neural network (ANN). The results of experiments conducted using various documentary images of the Sinhala language indicate that the proposed method has better character recognition performance than conventional methods.
机译:Sinhala是大多数斯里兰卡人口所说的主要语言。对于僧伽拉语言,可以清楚地需要光学字符识别(OCR)系统。但是,该语言包含非常相似的字符,这使得将它们区分很困难,除了特征分析。为Sinhala字符识别提出的先前系统的字符识别率低,因此需要进一步改进。因此,在本文中,我们提出了一种新的僧伽加拉字符识别方法,该方法使用字符几何特征和人工神经网络(ANN)。使用Sinhala语言的各种纪录片图像进行的实验结果表明该方法具有比传统方法更好的性格识别性能。

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