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A KNOWLEDGE-BASED TABLE RECOGNITION METHOD FOR CHINESE BANK STATEMENT IMAGES

机译:基于知识的表识别方法,用于中文银行对帐单图像

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Automatic processing of large volume scanned Chinese bank statements is a urgent demand recently. Conventional methods can not well handle the following challenges of this problem: various layout styles, noises, and especially requirement of fast speed for large Chinese character set. This paper proposes a knowledge based table recognition method to meet fast speed requirement with good accuracy. Two kinds of knowledge are utilized to accelerate the identification of digit columns and the cell recognition: i) geometric knowledge about column alignment and quasi equal digit width, and ii) semantic knowledge about prior format based on the results from an optical character recognition (OCR) engine of digits. Experimental results on a real dataset show the effectiveness of our method.
机译:自动加工扫描中国银行陈述最近是紧急需求。传统方法不能很好地处理这个问题的以下挑战:各种布局风格,噪音,尤其是大型汉字集的快速速度要求。本文提出了一种基于知识的表识别方法,以满足良好的准确性快速要求。两种知识用于加速数字列和小区识别的识别:i)关于列对齐和准相等的数字知识和准相同的数字宽度,并且II)基于来自光学字符识别的结果的先前格式的语义知识(OCR )数字发动机。实验结果对真实数据集显示了我们方法的有效性。

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