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Using Pattern Matching in the 1-D Domain of Chain Code Signals for the Compression of Binary Printed Farsi and Arabic Textual Images

机译:在链码信号的一维域中使用模式匹配对二进制印刷的波斯和阿拉伯文字图像进行压缩

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Pattern Matching is the most conventional method of binary text image compression that has been only used in the 2-D domain of textual image signals. In this paper a pattern matching technique is proposed in the 1-D domain of chain code description signal of printed binary textual Farsi-Arabic images. In printed Farsi-Arabic scripts, contrary to latin scripts, letters usually attach to each other and produce many different patterns. Hence some patterns are fully or partially subsets of others. Detecting such situations and exploiting them to reduce the number of library prototypes has a great effect on the compression efficiency. The Proposed method, contrary to the existing compression methods, has used this property for increasing the compression ratio. For the template matching part of the proposed method, we may use either the cross correlation or a proposed similarity measure which has lower computation time and better results. Experimental results show that the compression performance of the proposed method is as high as 4.5 times that of the conventional one.
机译:模式匹配是二进制文本图像压缩的最常规方法,仅在文本图像信号的二维域中使用。本文提出了一种在印刷二进制文本波斯波斯语-阿拉伯语图像的链码描述信号的一维域中的模式匹配技术。与拉丁文字相反,在印刷的波斯阿拉伯文字中,字母通常会彼此附着并产生许多不同的图案。因此,某些模式是其他模式的全部或部分子集。检测这种情况并利用它们来减少库原型的数量对压缩效率有很大影响。与现有的压缩方法相反,所提出的方法使用该特性来增加压缩率。对于所提出方法的模板匹配部分,我们可以使用互相关或所提议的相似性度量,该度量具有更少的计算时间和更好的结果。实验结果表明,该方法的压缩性能是传统方法的4.5倍。

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