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Improved Thresholding Method for Enhancing Jawi Binarization Performance

机译:提高了提高JAWI二值化性能的阈值方法

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Most local adaptive image binarization techniques have been inspired by Niblack's method and thus use local thresholding. Niblack's and the NICK methods that is based on it introduce a parameter k to determine the object boundaries in a given window, but one of the deficiencies of local thresholding is that the k value is constant. In this paper, we propose a new approach to calculating k values for the NICK binarization method: we set the k value based on the standard deviation of the image. For our experiments, we used the DIBCO 2013 dataset and a privately held ancient Jawi manuscript dataset. The results were evaluated using the F-measure, pseudo F-measure, peak signal-to-noise ratio, misclassication penalty metrics (MPM), distance reciprocal distortion (DRD), and overall rank score. The proposed method achieved result of 91.09% for the DIBCO dataset and 87.07% for the Jawi dataset, which were higher than those with earlier methods that used fixed k values ranging from - 0.2 to - 0.1. These results indicate that the k values produced by the proposed method can adapt to the state of the manuscript and that using them for NICK thresholding can increase binarization performance.
机译:大多数地方的自适应图像二值化技术已经启发Niblack的方法,因此使用局部阈值。是基于它Niblack的和NICK方法引入的参数k来确定在给定窗口中的对象的边界,但局部阈值的缺陷之一是,k值是恒定的。在本文中,我们提出了一种新的方法来计算用于所述NICK二值化方法的k值:我们设置基于图像的标准偏差k值。对于我们的实验中,我们使用了DIBCO 2013数据集和私人持有的古代手稿爪夷数据集。使用F值的结果进行评价,伪F值,峰值信噪比,misclassication罚指标(MPM),距离倒数失真(DRD),和整体秩得分。 0.2〜 - - 0.1为DIBCO数据集和87.07 %的爪夷数据集,这是比用以前的方法所使用的固定的k值范围从较高91.09 %所提出的方法来实现的结果。这些结果表明,由所提出的方法所产生的k个值能够适应原稿的状态,并且将它们用于NICK阈值可以提高二值化的性能。

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