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The Early Japanese Books Text Line Segmentation base on Image Processing and Deep Learning

机译:基于图像处理和深度学习的早期日语书籍文本行分割

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摘要

Early books record a lot of information such as politics, economy, culture, history at that time. Understanding the early books may help us know the history, becomes an important research recently. However, in Japan, a lot of early books are described by Kuzushi character, which is not used now and only few of specialists can understand it. Hence a large number of early Japanese books still do not be understood. Currently, researchers are trying to understand the early Japanese books with the assist of computer such as image processing and deep learning. However, these books are composed of articles and pictures, sometimes there are in the same page. This case increases the difficult of character recognition, and lets researchers have to segment the text line and separate the articles and pictures previously. This paper aims to segment the text line from the image of scanned early Japanese book by deep learning. For achieving better accuracy, this paper also proposes an image processing method which uses the projection profile for deleting the frame noise. The experimental results show that Precision, Recall and F Value achieve 95.2%, 98.3% and 96.6% respectively, and prove the effectiveness of our method.
机译:早期的书籍记录了当时的许多信息,例如政治,经济,文化,历史。了解早期书籍可能有助于我们了解历史,成为最近的一项重要研究。但是,在日本,很多早期书籍都是用Kuzushi字符描述的,现在还没有使用过,只有很少的专家能够理解。因此,仍然无法理解大量的早期日本书籍。目前,研究人员正试图借助诸如图像处理和深度学习之类的计算机来理解早期的日语书籍。但是,这些书是由文章和图片组成的,有时在同一页面中。这种情况增加了字符识别的难度,并使研究人员不得不分割文本行并事先分离文章和图片。本文旨在通过深度学习从扫描的早期日语书籍的图像中分割文本行。为了获得更好的精度,本文还提出了一种使用投影轮廓来消除帧噪声的图像处理方法。实验结果表明,Precision,Recall和F值分别达到95.2%,98.3%和96.6%,证明了该方法的有效性。

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