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Similar image retrieval in large-scale trademark databases based on regional and boundary fusion feature

机译:基于区域边界融合特征的大规模商标数据库相似图像检索

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摘要

In order to retrieve similar trademarks from large-scale trademark databases, combining the characteristics of trademark images, this paper presents a trademark image retrieval method based on regional and border feature fusion. Based on the target image extraction, the proposed approach describes the target region and border features. The region feature description is mainly based on the concept of partition block statistics. The region is divided into equal-area unit using concentric circles, and feature extraction is performed in each small block unit. For the border feature description, this study first detect corners, and then construct a Delaunay graph and extract features by combining the corner detected and the Delaunay triangulation reconstruction. In the search process, the method also incorporates information such as the trademark's color characteristics, trademark classification, and trademark keywords. The present study carried out image retrieval experiment on CE-SHAPE-1 database containing 1400 MPEG-7 core experimental shape, a classification trademark database containing 2000 images, and a national trademark database containing approximately 4.89 million images. The experimental results show that the proposed approach combines the advantages of region and border feature description, and can choose the best among various local optimizations, which makes the retrieval result more effective, more in line with human visual perception, and improves the retrieval accuracy.
机译:为了从大规模商标数据库中检索相似的商标,结合商标图像的特征,提出一种基于区域和边界特征融合的商标图像检索方法。基于目标图像提取,所提出的方法描述了目标区域和边界特征。区域特征描述主要基于分区块统计的概念。使用同心圆将区域划分为等面积单位,并在每个小块单位中执行特征提取。对于边界特征描述,本研究首先检测拐角,然后构造Delaunay图并通过组合检测到的拐角和Delaunay三角剖分重构来提取特征。在搜索过程中,该方法还包含诸如商标的颜色特征,商标分类和商标关键字之类的信息。本研究对包含1400个MPEG-7核心实验形状的CE-SHAPE-1数据库,包含2000个图像的分类商标数据库和包含约489万图像的国家商标数据库进行了图像检索实验。实验结果表明,该方法结合了区域和边界特征描述的优点,可以在各种局部优化中选择最佳,从而使检索结果更有效,更符合人的视觉感受,提高了检索精度。

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  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(13),11
  • 年度 -1
  • 页码 e0205002
  • 总页数 25
  • 原文格式 PDF
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  • 中图分类
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