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A Novel Hybrid Binarization Technique for Images of Historical Arabic Manuscripts

机译:一种用于历史阿拉伯手稿图像的混合二值化新技术

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摘要

In this paper, a novel binarization approach based on neutrosophic sets and sauvola's approach is presented. This approach is used for historical Arabic manuscript images which have problems with types of noise. The input RGB image is changed into the NS domain, which is shown using three subsets, namely, the percentage of indeterminacy in a subset, the percentage of falsity in a subset and the percentage of truth in a subset. The entropy in NS is used for evaluating the indeterminacy with the most important operation "lambda mean" operation in order to minimize indeterminacy which can be used to reduce noise. Finally, the manuscript is binarized using an adaptive thresholding technique. The main advantage of the proposed approach is that it preserves weak connections and provides smooth and continuous strokes. The performance of the proposed approach is evaluated both objectively and subjectively against standard databases and manually collected data base. The proposed method gives high results compared with other famous binarization approaches.
机译:本文提出了一种基于中智集和sauvola方法的新型二值化方法。此方法用于具有噪声类型问题的历史阿拉伯手稿图像。输入的RGB图像更改为NS域,使用三个子集进行显示,即子集的不确定性百分比,子集的虚假百分比和子集的真实百分比。 NS中的熵用于评估最重要的运算“λ平均”运算的不确定性,以便最大程度地减少不确定性,从而减少噪声。最后,使用自适应阈值化技术对稿件进行二值化处理。提出的方法的主要优点是,它保留了较弱的连接并提供了平滑连续的笔划。相对于标准数据库和手动收集的数据库,可以客观和主观地评估所提出方法的性能。与其他著名的二值化方法相比,该方法具有较高的结果。

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