Handwritten month word recognition on Brazilian bank cheques

M. Morita, R. Sabourin, M. El-Yacoubi, Flávio Bortolozzi, C. Suen
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引用次数: 24

Abstract

This paper describes an off-line system under development to process unconstrained handwritten dates on Brazilian bank cheques in an omni-writer context. We show here some improvements on our previous work on isolated month word recognition using hidden Markov models (HMM). After preprocessing, a word image is explicitly segmented into characters or pseudo-characters and represented by two feature sequences of equal length, which are combined using HMM. The word models are generated from the concatenation of appropriate character models. In addition to the small date database, we also make use of the legal amount database to increase the frequency of characters in the training and the validation sets. Although this study deals with a limited lexicon, the many similarities among the word classes can affect the performance of the recognition. Experiments show an increase in the average recognition rate from 84% to 91%. Finally, we present our perspectives of future work.
手写月字识别巴西银行支票
本文描述了一个离线系统在开发过程中不受约束的手写日期在巴西银行支票在一个全方位作家的背景下。我们在这里展示了我们之前使用隐马尔可夫模型(HMM)在孤立月词识别方面的一些改进。预处理后的词图像被显式分割成字符或伪字符,用两个等长的特征序列表示,并使用HMM进行组合。单词模型是从适当的字符模型的连接中生成的。除了小数据数据库之外,我们还使用了法定金额数据库来增加训练集和验证集中字符的频率。虽然本研究处理的是一个有限的词汇,但词类之间的许多相似性会影响识别的效果。实验表明,平均识别率从84%提高到91%。最后,我们提出了对未来工作的展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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