首页> 外文会议>International Conference on Pattern Recognition and Machine Intelligence(PReMI 2005); 20051220-22; Kolkata(IN) >A Holistic Classification System for Check Amounts Based on Neural Networks with Rejection
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A Holistic Classification System for Check Amounts Based on Neural Networks with Rejection

机译:基于剔除神经网络的支票金额整体分类系统

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摘要

A holistic classification system for off-line recognition of legal amounts in checks is described in this paper. The binary images obtained from the cursive words are processed following the human visual system, employing a Hough transform method to extract perceptual features. Images are finally coded into a bidimensional feature map representation. Multilayer perpeptrons are used to classify these feature maps into one of the 32 classes belonging to the CENPARMI database. To select a final classification system, ROC graphs are used to fix the best threshold values of the classifiers to obtain the best tradeoff between accuracy and misclassification.
机译:本文介绍了一种用于离线确认支票中合法金额的整体分类系统。从草书单词中获得的二进制图像按照人类视觉系统进行处理,采用霍夫变换方法提取感知特征。图像最终被编码为二维特征图表示形式。多层透视器用于将这些特征图分类为属于CENPARMI数据库的32个类之一。为了选择最终的分类系统,可使用ROC图来固定分类器的最佳阈值,以获得准确性和分类错误之间的最佳折衷。

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