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Automatic segmentation of digitalized historical manuscripts

机译:数字化历史手稿的自动分割

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摘要

The artistic content of historical manuscripts provides a lot of challenges in terms of automatic text extraction, picture segmentation and retrieval by similarity. In particular this work addresses the problem of automatic extraction of meaningful pictures, distinguishing them from handwritten text and floral and decorations. The proposed solution firstly employs a circular statistics description of a directional histogram in order to extract text. Then visual descriptors are computed over the pictorial regions of the page: the semantic content is distinguished from the decorative parts using color histograms and a novel texture feature called Gradient Spatial Dependency Matrix. The feature vectors are finally processed using an embedding procedure which allows increased performance in later SVM classification. Results for both feature extraction and embedding based classification are reported, supporting the effectiveness of the proposal on high resolution replicas of artistic manuscripts.
机译:历史手稿的艺术内容在自动文本提取,图片分割和通过相似性检索方面提出了很多挑战。特别是,这项工作解决了自动提取有意义的图片的问题,将它们与手写文本以及花卉和装饰品区分开来。所提出的解决方案首先采用方向直方图的圆形统计描述以提取文本。然后,在页面的图片区域上计算视觉描述符:使用颜色直方图和称为“梯度空间相关性矩阵”的新颖纹理特征将语义内容与装饰部分区分开。最后使用嵌入过程处理特征向量,该过程允许在以后的SVM分类中提高性能。报告了特征提取和基于嵌入的分类的结果,从而支持了该提案对艺术手稿的高分辨率复制品的有效性。

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