使用语言模型识别阿拉伯语手写单词

Muna Khayyat, L. Lam, C. Suen
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引用次数: 18

摘要

随着出版材料数量的不断增加,开发有效的方法来定位目标项目已成为一个重要的问题。为此目的采用的方法之一是单词定位,它可以通过使用相关的关键字来识别文档。本文报道了一种有效的阿拉伯语手写文档单词识别方法,该方法考虑了阿拉伯语手写的性质。阿拉伯语单词的部分(PAWs)构成了这个搜索过程的基本组件,并且实现了一个分层分类器(由一组分类器组成,每个分类器在输入模式的不同部分上训练)。在阿拉伯语单词识别中,语言模型首次被纳入到从PAWs重建单词的过程中。文中还介绍了该方法的细节和有希望的实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Arabic handwritten word spotting using language models
With the ever-increasing amounts of published materials being made available, developing efficient means of locating target items has become a subject of significant interest. Among the approaches adopted for this purpose is word spotting, which enables the identification of documents through the use of pertinent keywords. This paper reports on an effective method of word spotting for Arabic handwritten documents that takes into consideration the nature of Arabic handwriting. Parts of Arabic Words (PAWs) form the basic components of this search process, and a hierarchical classifier (consisting of a set of classifiers each trained on a different part of the input pattern) is implemented. For the first time in Arabic word spotting, language models are incorporated into the process of reconstructing words from PAWs. Details of the method and promising experimental results are also presented.
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