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Character Segmentation Scheme for OCR System For Myanmar Printed Documents

机译:缅甸印刷文件OCR系统的字符分割方案

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摘要

A utomatic machine-printed Optical Characters or texts Recognizers (OCR) are highly desirablefor a multitude of modern IT applications, including Digital Library software. However, the state ofthe art OCRsystems cannot do for Myanmar scripts as the language poses many challenges for document understanding. Therefore, the authors design an Optical Character Recognition System for Myanmar Printed Document (OCRMPD), with several proposed techniques that can automatically recognize Myanmar printed text from document images. In order to get more accurate system, the authors propose the method for isolation of the character image by using not only the projection methods but also structural analysis for wrongly segmented characters. To reveal the effectiveness of the segmentation technique, the authors follow a new hybrid feature extraction method and choose the SVM classifier for recognition of the character image. The proposed algorithms have been tested on a variety of Myanmar printed documents and the results of the experiments indicate that the methods can increase the segmentation accuracy as well as recognition rates.
机译:对于许多现代IT应用程序(包括数字图书馆软件),非常需要自动印刷的光学字符或文本识别器(OCR)。但是,最先进的OCR系统无法处理缅甸文字,因为该语言对文档理解提出了许多挑战。因此,作者设计了一种用于缅甸印刷文件的光学字符识别系统(OCRMPD),并提出了几种可以自动从文件图像中识别缅甸印刷文本的技术。为了获得更准确的系统,作者提出了一种不仅通过使用投影方法,而且通过对错误分割的字符进行结构分析来隔离字符图像的方法。为了揭示分割技术的有效性,作者采用了一种新的混合特征提取方法,并选择了SVM分类器来识别字符图像。所提出的算法已经在各种缅甸印刷文件上进行了测试,实验结果表明该方法可以提高分割的准确性和识别率。

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