Baseline Detection on Arabic Handwritten Documents

Ahmed Fawzi, M. Pastor, C. Martínez-Hinarejos
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引用次数: 7

Abstract

Document processing comprises different steps depending on the nature of the documents. For text documents, specially for handwritten documents, transcription of their contents is one of the main tasks. Handwritten Text Recognition (HTR) is the process of automatically obtaining the transcription of the content of a handwritten text document. In document processing, the basic unit for the acquisition process is the page image, whilst line image is the basic form for the HTR process. This is a bottle-neck which is holding back the massive industrial document processing. Baseline detection can be used not only to segment page images into line images but also for many other document processing steps. Baseline detection problem can be formulated as a clustering problem over a set of interest points. In this work, we study the use of an automatic baseline detection technique, based on interest point clustering, in Arabic handwritten documents. The experiments reveal that this technique provides promising results for this task.
阿拉伯语手写文档的基线检测
根据文档的性质,文档处理包括不同的步骤。对于文本文档,特别是手写文档,其内容的转录是主要任务之一。手写文本识别(HTR)是自动获取手写文本文档内容的转录过程。在文档处理中,获取过程的基本单位是页面图像,而行图像是HTR过程的基本形式。这是阻碍大规模工业文档处理的瓶颈。基线检测不仅可以用于将页面图像分割成行图像,还可以用于许多其他文档处理步骤。基线检测问题可以表述为一组兴趣点上的聚类问题。在这项工作中,我们研究了在阿拉伯语手写文档中使用基于兴趣点聚类的自动基线检测技术。实验表明,该技术为该任务提供了有希望的结果。
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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