S. Maddouri, H. Amiri, A. Belaïd, Christophe Choisy
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引用次数: 72
摘要
基于Cote (Cote et al.(1998))开发的用于拉丁单词识别的PERCEPTRO系统的思想,我们提出了一个阿拉伯手写单词识别系统。它是一种特定的神经网络,命名为透明神经网络,结合了全局和局部视觉建模(GVM-LVM)的词。在正向传播运动中,前者(GVM)提出了一组表征单词中某些字母存在的结构特征。GVM提出了包含这些特征的可能字母和单词的列表。然后,在反向传播运动中,根据这些字母与相应印刷字母的接近程度来确认或不确认这些字母。LVM利用其傅里叶描述子的对应性来实现字母形状与相应印刷字母之间的对应关系,起到字母形状归一化器的作用。
Combination of local and global vision modelling for Arabic handwritten words recognition
We propose an Arabic handwritten word recognition system based on the idea of the PERCEPTRO system developed by Cote (Cote et al. (1998)) for Latin word recognition. It is a specific neural network, named transparent neural network, combining a global and a local vision modeling (GVM-LVM) of the word. In the forward propagation movement, the former (GVM) proposes a list of structural features characterizing the presence of some letters in the word. GVM proposes a list of possible letters and words containing these characteristics. Then, in the backpropagation movement, these letters are confirmed or not according to their proximity with corresponding printed letters. The correspondence between the letter shapes and the corresponding printed letters is performed by LVM using the correspondence of their Fourier descriptors, playing the role of a letter shape normalizer.