Automatic processing of Arabic text

Ziad Osman, L. Hamandi, R. Zantout, F. Sibai
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引用次数: 8

Abstract

Automatic recognition of printed and handwritten documents remains an active area of research. Arabic is one of the languages that present special problems. Arabic is cursive and therefore necessitates a segmentation process to determine the boundaries of a character. Arabic characters consist of multiple disconnected parts. Dots and Diacritics are used in many Arabic characters and can appear above or below the main body of the character. In Arabic, the same letter has up to four different forms depending on where it appears in the word and depending on the letters that are adjacent to it. In this paper, a novel approach is described that recognizes Arabic script documents. The method starts by preprocessing which involves binarization, noise reduction, and thinning. The text is then segmented into separate lines. Characters are then segmented by determining bifurcation points that are near the baseline. Segmented characters are then compared to prestored templates to identify the best match. The template comparisons are based on central moments, Hu moments, and Invariant moments. The method is proven to work satisfactorily for scanned printed Arabic text. The paper concludes with a discussion of the drawbacks of the method, and a description of possible solutions.
自动处理阿拉伯语文本
打印和手写文件的自动识别仍然是一个活跃的研究领域。阿拉伯语是存在特殊问题的语言之一。阿拉伯语是草书,因此需要分割过程来确定字符的边界。阿拉伯字符由多个不相连的部分组成。点和变音符符在许多阿拉伯字符中使用,可以出现在字符主体的上方或下方。在阿拉伯语中,同一个字母最多有四种不同的形式,这取决于它在单词中出现的位置以及与它相邻的字母。本文描述了一种识别阿拉伯文字文档的新方法。该方法首先进行预处理,包括二值化、降噪和细化。然后将文本分割成单独的行。然后通过确定基线附近的分岔点来分割字符。然后将分割的字符与预先存储的模板进行比较,以确定最佳匹配。模板比较基于中心矩、Hu矩和不变矩。该方法对扫描打印的阿拉伯文文本效果满意。本文最后讨论了该方法的缺点,并描述了可能的解决方案。
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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