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Inscription Manuscripts and its Performance Evaluation Methods

机译:题字手稿及其绩效评估方法

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Epigraphs or inscriptions are important sources of reshaping our history and culture. It is necessity of the day to preserve them for the use of future generation. Modern paleographers find it difficult to decipher the information in the epigraphs these days for a number of reasons. It is due to the erosion of document material over the period of time, due to the existence of different types of noises and unknown character sets of ancient time. To read the information in these types of documents, first characters have to be extracted. Here, we are proposing a model for the extraction of characters through binarization and removal of background noise. This consists of phase feature based preprocessing and Gaussian model based background elimination using expectation maximization (EM) algorithm. Enhancement and preprocessing are carried out using different types of specialized filters which helps in character extraction. Two phase features namely weighted mean phase angle (PAmean) and maximum moment of phase congruency covariance (PCCmax) are calculated to differentiate the foreground from the background. EM algorithm removes the background noise completely where foreground characters are untouched. Image is binarized by considering the phase Congruency based algorithms and finally, background elimination is done. Proposed algorithm is tested on different historical documents and experimental results show the robustness of proposed method on various inscriptions. Results obtained are matched with many of the classical algorithms currently in existence.
机译:秘书或铭文是重塑我们历史和文化的重要来源。这是一天的必要性,以保护它们用于使用未来的一代。现代的大古图表发现这些天难以破译盖形物中的信息,原因有很多原因。这是由于在一段时间内侵蚀了文件材料,因为存在不同类型的噪音和古代的未知角色集。要读取这些类型的文档中的信息,必须提取第一个字符。在这里,我们正在提出通过二值化和消除背景噪声来提取字符的模型。这包括使用基于阶段特征的基于预处理和基于高斯模型的背景消除,使用期望最大化(EM)算法。使用不同类型的专用过滤器进行增强和预处理,有助于字符提取。两个相特征是加权平均相位角(PAMEAN)和相等协方差的最大时刻(PCCMAX)以区分前景。 EM算法完全删除背景噪声,其中前台字符未被触及。通过考虑基于相中基于算法的算法并最终,完成了图像。在不同的历史文献中测试了算法,实验结果表明了各种铭文上提出的方法的鲁棒性。获得的结果与当前存在的许多经典算法匹配。

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