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Vocabulary Selection for Graph of Words Embedding

机译:词嵌入图的词汇选择

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摘要

The Graph of Words Embedding consists in mapping every graph in a given dataset to a feature vector by counting unary and binary relations between node attributes of the graph. It has been shown to perform well for graphs with discrete label alphabets. In this paper we extend the methodology to graphs with n-dimensional continuous attributes by selecting node representatives. We propose three different discretization procedures for the attribute space and experimentally evaluate the dependence on both the selector and the number of node representatives. In the context of graph classification, the experimental results reveal that on two out of three public databases the proposed extension achieves superior performance over a standard reference system.
机译:单词图嵌入包括通过计算图的节点属性之间的一元和二元关系,将给定数据集中的每个图映射到特征向量。对于离散标签字母的图形,它显示出良好的性能。在本文中,我们通过选择节点代表将方法扩展到具有n维连续属性的图。我们为属性空间提出了三种不同的离散化程序,并通过实验评估了对选择器和节点代表数量的依赖性。在图分类的上下文中,实验结果表明,在三个公共数据库中的两个中,建议的扩展实现了优于标准参考系统的性能。

著录项

  • 来源
  • 会议地点 Las Palmas de Gran Canaria(ES);Las Palmas de Gran Canaria(ES)
  • 作者单位

    Computer Vision Center, Universitat Autonoma de Barcelona Edifici O Campus UAB, 08193 Bellaterra, Spain;

    Computer Vision Center, Universitat Autonoma de Barcelona Edifici O Campus UAB, 08193 Bellaterra, Spain;

    Institute for Computer Science and Applied Mathematics, University of Bern, Neubrueckstrasse 10, 3012 Bern, Switzerland;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 信息处理(信息加工);
  • 关键词

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