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Visual Similarity Based Document Layout Analysis

机译:基于视觉相似度的文档布局分析

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摘要

In this paper, a visual similarity based document layout analysis (DLA) scheme is proposed, which by using clustering strategy can adaptively deal with documents in different languages, with different layout structures and skew angles. Aiming at a robust and adaptive DLA approach, the authors first manage to find a set of representative filters and statistics to characterize typical texture patterns in document images, which is through a visual similarity testing process. Texture features are then extracted from these filters and passed into a dynamic clustering procedure, which is called visual similarity clustering. Finally, text contents are located from the clustered results. Benefit from this scheme, the algorithm demonstrates strong robustness and adaptability in a wide variety of documents, which previous traditional DLA approaches do not possess.
机译:本文提出了一种基于视觉相似度的文档布局分析(DLA)方案,该方案通过使用聚类策略可以自适应地处理不同语言,不同布局结构和倾斜角度的文档。针对健壮和自适应的DLA方法,作者首先设法通过视觉相似性测试过程找到一组代表性的过滤器和统计数据,以表征文档图像中的典型纹理图案。然后从这些过滤器中提取纹理特征,并将其传递到动态聚类过程中,该过程称为视觉相似性聚类。最后,从聚类结果中找到文本内容。得益于该方案,该算法在各种文档中都表现出强大的鲁棒性和适应性,而以前的传统DLA方法则不具备这种能力。

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