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Graph Based Shapes Representation and Recognition

机译:基于图的形状表示和识别

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摘要

In this paper, we propose to represent shapes by graphs. Based on graphic primitives extracted from the binary images, attributed relational graphs were generated. Thus, the nodes of the graph represent shape primitives like vectors and quadrilaterals while arcs describing the mutual primitives relations. To be invariant to transformations such as rotation and scaling, relative geometric features extracted from primitives are associated to nodes and edges as attributes. Concerning graph matching, due to the fact of NP-completeness of graph-subgraph isomorphism, a considerable attention is given to different strategies of inexact graph matching. We also present a new scoring function to compute a similarity score between two graphs, using the numerical values associated to the nodes and edges of the graphs. The adaptation of a greedy graph matching algorithm with the new scoring function demonstrates significant performance improvements over traditional exhaustive searches of graph matching.
机译:在本文中,我们建议用图形表示形状。基于从二值图像中提取的图形基元,生成了相关的关系图。因此,图的节点表示形状图元,例如矢量和四边形,而圆弧描述了相互图元的关系。为了不影响诸如旋转和缩放之类的变换,将从图元中提取的相对几何特征作为属性关联到节点和边。关于图匹配,由于图-子图同构的NP完全性的事实,对不精确图匹配的不同策略给予了相当大的关注。我们还提出了一个新的评分函数,使用与图的节点和边缘相关的数值来计算两个图之间的相似性评分。贪婪的图匹配算法与新的评分功能的适配表明,与传统的穷举图匹配搜索相比,性能有了显着提高。

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