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A New Two-Stage Scheme for the Recognition of Persian Handwritten Characters

机译:一种新的识别波斯语手写字符的两阶段方案

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In this paper, a two-stage scheme for the recognition of Persian handwritten isolated characters is proposed. In the first stage, similar shaped characters are categorized into groups and as a result, 8 groups are obtained from 32 Persian basic characters. In the second stage, the groups containing more than one similar shape characters are considered further for the final recognition. Feature extraction is based on under sampled bitmaps technique and modified chain-code direction frequencies. For the first stage features, we compute 49-dimension features based on under sampled bitmaps from 49 non-overlapping 7×7 window-maps. 196-dimension chain-code direction frequencies from 49 overlapping 9×9 window-maps are computed and used as features for the second stage of the proposed scheme. Classifiers are one-against-other support vector machines (SVM). We evaluated our scheme on a standard dataset of Persian handwritten characters. Using 36682 samples for training, we tested our scheme on other 15338 samples and obtained 98.10% and 96.68% correct recognition rates when considered 8-class and 32-class problems, respectively.
机译:本文提出了一种识别波斯手写孤立字符的两阶段方案。在第一阶段,将相似形状的字符分类为组,结果是从32个波斯基本字符中获得了8个组。在第二阶段,进一步考虑包含多个相似形状字符的组。特征提取基于欠采样位图技术和修改的链码方向频率。对于第一阶段的特征,我们基于来自49个非重叠的7×7窗口映射的欠采样位图,计算49维特征。计算来自49个重叠的9×9窗口映射的196维链码方向频率,并将其用作拟议方案第二阶段的特征。分类器是另一对支持向量机(SVM)。我们在波斯手写字符的标准数据集上评估了我们的方案。使用36682个样本进行训练,我们在其他15338个样本上测试了我们的方案,当分别考虑8类和32类问题时,我们获得了98.10%和96.68%的正确识别率。

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