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Analysis of the Reforming Languages by Image-Based Variations of LBP and NBP Operators

机译:通过基于图像的LBP和NBP运算符的改革语言分析

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This paper proposes an extension of the local binary pattern and neighbor binary pattern as a basis for extracting features needed for recognizing an image which represents a text in specific languages. At the first, the unicode text is, according to its energy status in the text-line area, converted into a gray level image. Then, the extension of the local binary pattern and neighbor binary pattern is proposed. These features are extracted in order to differentiate image-based representations of a text in a given language. At the end, the extracted features are classified by Support Vector Machine and Naive Bayes to establish a difference that can identify different languages. The obtained results prove the accuracy and efficiency of the proposed method when compared with other state-of-the-art methods.
机译:本文提出了局部二进制模式和邻居二进制图案的扩展,作为提取识别图像所需的特征的基础,该特征表示代表特定语言中的文本。首先,根据其在文本线区域中的能量状态,Unicode文本转换为灰度级图像。然后,提出了局部二进制模式和邻居二进制模式的扩展。提取这些特征以便以给定的语言区分基于图像的文本的表示。最后,提取的特征由支持向量机和天真贝叶斯分类,以建立可以识别不同语言的差异。与其他最先进的方法相比,所获得的结果证明了所提出的方法的准确性和效率。

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