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CHECK AMOUNT RECOGNITION BASED ON THE CROSS VALIDATION OF COURTESY AND LEGAL AMOUNT FIELDS

机译:基于有礼域和合法域的交叉验证的支票金额识别

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Check amount recognition is one of the most promising commercial applications of handwriting recognition. This paper is devoted to the description of the check reading system developed to recognize amounts on American personal checks. Special attention is paid to a reliable procedure developed to reject doubtful answers. For this purpose the legal (worded) amount on a personal check is recognized along with the courtesy (digit) amount. For both courtesy and legal amount fields, a brief description of all recognition stages beginning with field extraction and ending with the recognition itself are presented. We also present the explanation of problems existing at each stage and their possible solutions. The numeral recognizer used to read the amounts written in figures is described. This recognizer is based on the procedure of matching input subgraphs to graphs of symbol prototypes. Main principles of the handwriting recognizer used to read amounts written in words are explained. The recognizer is based on the idea of describing the handwriting with the most stable handwriting elements. The concept of the optimal confidence level of the recognition answer is introduced. It is shown that the conditional probability of the answer correctness is an optimal confidence level function. The algorithms of the optimal confidence level estimation for some special cases are described. The sophisticated algorithm of cross validation between legal and courtesy amount recognition results based on the optimal confidence level approach is proposed. Experimental results on real checks are presented. The recognition rate at 1% error rate is 67%. The recognition rate without reject is 85%. Significant improvement is achieved due to legal amount processing in spite of a relatively low recognition rate for this field.
机译:支票金额识别是手写识别最有前途的商业应用之一。本文专门介绍为识别美国个人支票上的金额而开发的支票阅读系统。特别注意开发出拒绝可疑答案的可靠程序。为此,应将个人支票上的法定(文字)金额和礼节(数字)金额一起确认。对于礼节和合法金额字段,将简要介绍所有识别阶段,从字段提取开始,到识别本身结束。我们还将介绍每个阶段存在的问题及其可能的解决方案。描述了用于读取写在图中的金额的数字识别器。该识别器基于将输入子图与符号原型图匹配的过程。解释用于读取以文字形式书写的金额的手写识别器的主要原理。识别器基于用最稳定的手写元素描述手写的想法。介绍了识别答案的最佳置信度的概念。结果表明,答案正确性的条件概率是最佳置信度函数。描述了一些特殊情况下的最佳置信度估计算法。提出了一种基于最优置信度的合法与礼节金额识别结果交叉验证的复杂算法。给出了实际检查的实验结果。错误率为1%时的识别率为67%。无不合格率是85%。尽管该领域的识别率相对较低,但由于合法金额处理,仍取得了显着改善。

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