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Relational indexing of vectorial primitives for symbol spotting in line-drawing images

机译:矢量原语的关系索引,用于在线条画图像中发现符号

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This paper presents a symbol spotting approach for indexing by content a database of line-drawing images. As line-drawings are digital-born documents designed by vectorial softwares, instead of using a pixel-based approach, we present a spotting method based on vector primitives. Graphical symbols are represented by a set of vectorial primitives which are described by an off-the-shelf shape descriptor. A relational indexing strategy aims to retrieve symbol locations into the target documents by using a combined numerical-relational description of 2D structures. The zones which are likely to contain the queried symbol are validated by a Hough-like voting scheme. In addition, a performance evaluation framework for symbol spotting in graphical documents is proposed. The presented methodology has been evaluated with a benchmarking set of architectural documents achieving good performance results.
机译:本文提出了一种符号标记方法,用于按内容索引线条画图像数据库。由于画线图是由矢量软件设计的数字化文档,而不是使用基于像素的方法,因此,我们提出了一种基于矢量基元的点样方法。图形符号由一组矢量基元表示,这些基元由现成的形状描述符描述。关系索引策略旨在通过使用2D结构的组合数字关系描述将符号位置检索到目标文档中。可能包含查询符号的区域已通过类似霍夫投票的方案进行了验证。此外,提出了一种用于图形文档中符号识别的性能评估框架。所提供的方法已通过一组基准测试的体系结构文档进行了评估,以实现良好的性能结果。

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