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Document Image Retrieval Based on Texture Features: A Recognition-Free Approach

机译:基于纹理特征的文档图像检索:一种无识别方法

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摘要

The tendency of current technology is towards a paperless world. Due to the rapid increase of digitized documents, providing a fast and easy method for retrieval is in high demand. The aim of this paper is to examine the effectiveness of texture features for document image retrieval. Thus, segmentation-free document image retrieval using a binary texture method is proposed. In the proposed approach, local features are extracted, local grey-level structures are summarised, and their distribution is characterised using global features. The assumption is that texture properties in the text regions and non-text regions of the document images are different. This assumption is used to rank the available document images and retrieve only those, which have greatest visual similarity to a given query. The under-sampled image and sub-images of the original image are further considered to improve the retrieval results, which are up to 76.0% in the first ranking and 96.2% in the Top-10 ranking. The Media Team Oulu Document Database, which is a heterogeneous database that offers a great variety of page layouts and contents, is used for experimentation.
机译:当前技术的趋势是走向无纸化世界。由于数字化文档的迅速增加,因此迫切需要提供一种快速简便的检索方法。本文的目的是检验纹理特征在文档图像检索中的有效性。因此,提出了使用二进制纹理方法的无分割文档图像检索。在提出的方法中,提取局部特征,总结局部灰度结构,并使用全局特征表征其分布。假定文档图像的文本区域和非文本区域中的纹理属性不同。此假设用于对可用文档图像进行排名,并仅检索那些与给定查询具有最大视觉相似性的图像。进一步考虑了原始图像的欠采样图像和子图像,以改善检索结果,在第一等级中达到76.0%,在前十名中达到96.2%。媒体团队Oulu文档数据库是一种异构数据库,可提供多种页面布局和内容,用于实验。

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