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SEGMENTATION-FREE ONLINE ARABIC HANDWRITING RECOGNITION

机译:无分段的在线阿拉伯手写体识别

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摘要

Arabic script is naturally cursive and unconstrained and, as a result, an automatic recognition of its handwriting is a challenging problem. The analysis of Arabic script is further complicated in comparison to Latin script due to obligatory dots/stokes that are placed above or below most letters. In this paper, we introduce a new approach that performs online Arabic word recog nition on a continuous word-part level, while performing training on the letter level. In addition, we appropriately handle delayed strokes by first detecting them and then integrating them into the word-part body. Our current implementation is based on Hidden Markov Models (HMM) and correctly handles most of the Arabic script recognition difficulties. We have tested our implementation using various dictionaries and multiple writers and have achieved encouraging results for both writer-dependent and writer-independent recognition.
机译:阿拉伯文字自然是草书且不受限制,因此,自动识别其笔迹是一个具有挑战性的问题。与拉丁字母相比,阿拉伯语的分析要复杂得多,这是因为在大多数字母的上方或下方放置了强制性的点/标记。在本文中,我们介绍了一种新的方法,该方法可以在连续的单词部分级别执行在线阿拉伯语单词识别,同时在字母级别执行训练。此外,我们先检测延迟的笔画,然后将其整合到单词部分的主体中,以适当地处理延迟的笔画。我们当前的实现基于隐马尔可夫模型(HMM),可以正确处理大多数阿拉伯文字识别困难。我们已经使用各种词典和多个作者测试了我们的实现,并且在依赖于作者和独立于作者的识别上均取得了令人鼓舞的结果。

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