Identification of Machine-Printed and Handwritten Words in Arabic and Latin Scripts

Asma Saïdani, A. Kacem, A. Belaïd
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引用次数: 31

Abstract

Our ultimate objective is to contribute to the field of script and nature identification to be able to differentiate, at word level, handwritten or machine-printed, Arabic and Latin scripts. Different sets of features have been employed successfully for discriminating between Arabic and Latin words. They include few well-established features previously used and adapted in our case and new structural features which are intrinsic features of Arabic and Latin scripts. We select features that maximize the distinction between Arabic and Latin words. Experiments have been conducted with 1320 handwritten and printed words, covering a wide range of fonts, and encouraging results have been obtained. We achieved a correct classification of 98.4 percent for word level script and nature identification using Bayes classifier.
阿拉伯文和拉丁文机印字和手写字的识别
我们的最终目标是为文字和自然识别领域做出贡献,以便能够在单词水平上区分手写或机器打印的阿拉伯语和拉丁文字。不同的特征集被成功地用于区分阿拉伯语和拉丁语单词。它们包括一些在我们的案例中以前使用和改编的已确立的特征,以及作为阿拉伯和拉丁文字固有特征的新结构特征。我们选择能够最大限度地区分阿拉伯语和拉丁语单词的特征。用1320个手写和印刷文字进行了实验,涵盖了广泛的字体,取得了令人鼓舞的结果。我们使用贝叶斯分类器对词级脚本和性质识别实现了98.4%的正确率。
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