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Segmentation-Free Printed Traditional Mongolian OCR Using Sequence to Sequence with Attention Model

机译:序列到注意力模型的无分割印刷蒙古传统OCR

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Mongolian Optical Character Recognition (OCR) systems are required for printed document digitization and Mongolian cultural resources utilization. Existing Mongolian OCR systems are based on segmentation. But, the Mongolian segmentation is more difficult than other languages. So, these methods are highly costly and error suffering. In this study, a segmentation-free based traditional Mongolian word recognition method is proposed. Specifically, we formalize the OCR task as a sequence to sequence mapping problem, in which the input Mongolian word image and the output textual string are treated as a sequence of image frames and a sequence of letters, respectively. A sequence to sequence with attention model is adopted to solve this problem. Experimental results on a dataset show the effectiveness of the proposed method.
机译:蒙古光学字符识别(OCR)系统是印刷文档数字化和蒙古文化资源利用所必需的。现有的蒙古OCR系统是基于分段的。但是,蒙古语的分割比其他语言更难。因此,这些方法非常昂贵且容易出错。在这项研究中,提出了一种基于无分割的传统蒙古语单词识别方法。具体来说,我们将OCR任务形式化为序列到序列映射问题,其中将输入的蒙古语单词图像和输出的文本字符串分别视为图像帧序列和字母序列。解决了该问题,采用了序列注意序列模型。在数据集上的实验结果表明了该方法的有效性。

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