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Off-lexicon online Arabic handwriting recognition using neural network

机译:使用神经网络的Lexicon Off-Lexicon在线阿拉伯语手写识别

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This paper highlights a new method for online Arabic handwriting recognition based on graphemes segmentation. The main contribution of our work is to explore the utility of Beta-elliptic model in segmentation and features extraction for online handwriting recognition. Indeed, our method consists in decomposing the input signal into continuous part called graphemes based on Beta-Elliptical model, and classify them according to their position in the pseudo-word. The segmented graphemes are then described by the combination of geometric features and trajectory shape modeling. The efficiency of the considered features has been evaluated using feed forward neural network classifier. Experimental results using the benchmarking ADAB Database show the performance of the proposed method.
机译:本文突出了基于图形分割的在线阿拉伯语手写识别的新方法。我们的工作的主要贡献是探讨Beta-Elliptic模型在线手写识别的细分和功能提取的效用。实际上,我们的方法包括将输入信号分解为基于Beta-椭圆模型的连续部分,并根据其在伪字中的位置对它们进行分类。然后通过几何特征和轨迹形状建模的组合来描述分段的图形。已经使用馈线神经网络分类器评估了所考虑的特征的效率。使用基准测试数据库的实验结果显示了所提出的方法的性能。

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