A document segmentation, classification and recognition system

F. Shih, S.-S. Chen, D. Hung, P. Ng
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引用次数: 33

Abstract

A discussion is given on a document segmentation, classification and recognition system for automatically reading daily-received office documents that have complex layout structures, such as multiple columns and mixed-mode contents of texts, graphics and half-tone pictures. First, the block segmentation employs a two-step run-length smoothing algorithm for decomposing any document into single-mode blocks. Next, based on clustering rules the block classification classifies each block into one of text, horizontal or vertical lines, graphics, and pictures. The text block is separated into isolated characters using projection profiles, and which are translated into ASCII codes through a font- and size-independent character recognition subsystem. Logo pictures discriminated from half-tone pictures are identified and converted into symbolic words. The experimental results show that the proposed system is capable of correctly reading different styles of mixed-mode printed documents.<>
一个文档分割、分类和识别系统
讨论了一种用于自动读取多栏、文本、图形、半色调图片混合内容等复杂版面结构的日常办公文档的文档分割、分类和识别系统。首先,块分割采用两步游程平滑算法,将任意文档分解为单模块。接下来,基于聚类规则,块分类将每个块分类为文本、水平线或垂直线、图形和图片。使用投影配置文件将文本块分离为孤立的字符,并通过与字体和大小无关的字符识别子系统将其转换为ASCII码。从半色调图片中识别出标志图片,并将其转化为符号文字。实验结果表明,该系统能够正确读取不同样式的混合模式打印文档。
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