手写日期的分割和识别

M. Morita, R. Sabourin, Flávio Bortolozzi, C. Suen
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引用次数: 19

摘要

提出了一个HMM-MLP混合系统,用于识别写在巴西银行支票上的复杂日期图像。该系统首先通过基于hmm方法的识别过程将日期图像隐式分割成子字段。然后,系统处理三个必需的日期子字段(日、月和年)。一种神经方法被用来处理数字串,一种马尔可夫策略被用来识别和验证单词。我们还引入了数字元类的概念,利用元类来减少年、日的词汇量,提高数字的分割和识别精度。实验结果表明,该算法在数据识别方面取得了很好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Segmentation and recognition of handwritten dates
Presents an HMM-MLP hybrid system to recognize complex date images written on Brazilian bank cheques. The system first segments implicitly a date image into sub-fields through the recognition process based on an HMM-based approach. Afterwards, the three obligatory date sub-fields are processed by the system (day, month and year). A neural approach has been adopted to work with strings of digits and a Markovian strategy to recognize and verify words. We also introduce the concept of meta-classes of digits, which is used to reduce the lexicon size of the day and year and improve the precision of their segmentation and recognition. Experiments show interesting results on date recognition.
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