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Touching Text Character Localization in Graphical Documents Using SIFT

机译:使用SIFT触摸图形文档中的文本字符本地化

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Interpretation of graphical document images is a challenging task as it requires proper understanding of text/graphics symbols present in such documents. Difficulties arise in graphical document recognition when text and symbol overlapped/touched. Intersection of text and symbols with graphical lines and curves occur frequently in graphical documents and hence separation of such symbols is very difficult. Several pattern recognition and classification techniques exist to recognize isolated text/symbol. But, the touching/overlapping text and symbol recognition has not yet been dealt successfully. An interesting technique, Scale Invariant Feature Transform (SIFT), originally devised for object recognition can take care of overlapping problems. Even if SIFT features have emerged as a very powerful object descriptors, their employment in graphical documents context has not been investigated much. In this paper we present the adaptation of the SIFT approach in the context of text character localization (spotting) in graphical documents. We evaluate the applicability of this technique in such documents and discuss the scope of improvement by combining some state-of-the-art approaches.
机译:图形文档图像的解释是一个具有挑战性的任务,因为它需要适当地了解这些文档中存在的文本/图形符号。当文本和符号重叠/触摸时,在图形文件识别中出现困难。图形文本和曲线的文本和符号经常发生在图形文档中,因此这种符号的分离非常困难。存在若干模式识别和分类技术以识别孤立的文本/符号。但是,触摸/重叠文本和符号识别尚未成功处理。一种有趣的技术,尺寸不变的功能变换(SIFT),最初设计用于对象识别可能会负责重叠的问题。即使SIFT功能被出现为一个非常强大的对象描述符,它们在图形文件中的就业情况也没有得到调查。在本文中,我们在图形文档中提出了在文本字符本地化(发现)的背景下的SIFT方法。我们通过结合一些最先进的方法,评估该技术在此类文件中的适用性,并讨论了一些最先进的方法的改进范围。

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