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Segmentation and recognition of characters on Tulu palm leaf manuscripts

机译:图卢棕榈叶手稿上字符的分割和识别

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This paper proposes an efficient method for segmentation and recognition of handwritten characters from Tulu palm leaf manuscript images. The proposed method uses an automated tool with a combination of thresholding and edge detection technique to binarise the image. Further projection profile with connected component analysis is used to line and character segmentation. Deep convolution neural network (DCNN) model used here to extract features and recognise segmented Tulu characters efficiently with a recognition rate of 79.92%. The results are verified using benchmark dataset, the AMADI_LontarSet to generalise our model to handwritten character recognition task. The results showed that our method outperforms from the existing state of art models.
机译:本文提出了一种从图卢棕榈叶手稿图像中分割和识别手写字符的有效方法。所提出的方法使用结合了阈值和边缘检测技术的自动化工具来对图像进行二值化。具有连接成分分析的其他投影轮廓用于行和字符分割。此处使用的深度卷积神经网络(DCNN)模型可提取特征并有效识别分段的Tulu字符,识别率为79.92%。使用基准数据集AMADI_LontarSet验证了结果,以将我们的模型推广到手写字符识别任务。结果表明,我们的方法优于现有的现有模型。

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