Recognition of Off-Line Handwritten Arabic Words Using Neural Network

S. Al-Maadeed
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引用次数: 39

Abstract

Neural network (NN) has been used with some success in recognizing printed Arabic words. In this paper, a complete scheme for unconstrained Arabic handwritten word recognition based on a neural network is proposed and discussed. The overall engine of this combination of a global feature scheme with a NN is a system able to classify Arabic-handwritten words of one hundred different writers. The system first attempts to remove some of the variation in the images that do not affect the identity of the handwritten word. Next, the system codes the skeleton and edge of the word so that feature information about the strokes in the skeleton is extracted. Then, a classification process based on the artificial NN classifier is used as global recognition engine, to classify the Arabic words. The output is a word in the dictionary. A detailed experiment is carried out, and successful recognition results are reported
基于神经网络的离线手写阿拉伯语单词识别
神经网络(NN)在识别印刷阿拉伯文字方面取得了一定的成功。本文提出并讨论了一种基于神经网络的无约束阿拉伯手写体单词识别的完整方案。将全局特征方案与神经网络相结合的整体引擎是一个能够对100位不同作者的阿拉伯手写单词进行分类的系统。该系统首先尝试去除图像中不影响手写单词身份的一些变化。接下来,系统对单词的骨架和边缘进行编码,提取骨架中笔画的特征信息。然后,利用基于人工神经网络分类器的分类过程作为全局识别引擎,对阿拉伯语单词进行分类。输出是字典中的一个单词。进行了详细的实验,并取得了成功的识别结果
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