Recognition of courtesy amounts on bank checks based on a segmentation approach

L. Q. Zhang, C. Suen
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引用次数: 11

Abstract

A segmentation based courtesy amount recognition (CAR) system is presented in this paper. A two-stage segmentation module has been proposed, namely the global segmentation stage and the local segmentation stage. At the global segmentation stage, a courtesy amount is coarsely segmented into sub-images according to the spatial relationships of the connected components. These sub-images are then verified by the recognition module and the rejected sub-images are sequentially split using contour analysis at the local segmentation stage. Two neural network classifiers are combined into a recognition module. The isolated digit classifier divides the input patterns into ten numeral classes (0-9), while the holistic double zeros classifier recognizes the cursive and touching double zeros. Experimental results show that the system reads 66.5% bank checks correctly at 0% misreading rate.
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基于分段方法的银行支票上礼貌金额的识别
提出了一种基于分段的礼貌金额识别系统。提出了一种两阶段分割模块,即全局分割阶段和局部分割阶段。在全局分割阶段,根据连接分量的空间关系将礼量粗分割成子图像。然后识别模块对这些子图像进行验证,并在局部分割阶段使用轮廓分析对被拒绝的子图像进行顺序分割。将两个神经网络分类器组合成一个识别模块。孤立数字分类器将输入模式分为10个数字类别(0-9),整体双零分类器识别草书和触摸双零。实验结果表明,该系统正确读取66.5%的银行支票,误读率为0%。
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Bigram-based post-processing for online handwriting recognition using correctness evaluation The effect of large training set sizes on online Japanese Kanji and English cursive recognizers Analysis of stability in hand-written dynamic signatures Recognition of courtesy amounts on bank checks based on a segmentation approach Vind(x): using the user through cooperative annotation
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