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A Novel Method for Community Detection in Complex Network Using New Representation for Communities

机译:一种新的社区表示形式的复杂网络社区检测新方法

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摘要

During the recent years, community detection in complex network has become a hot research topic in various research fields including mathematics, physics and biology. Identifying communities in complex networks can help us to understand and exploit the networks more clearly and efficiently. In this paper, we investigate the topological structure of complex networks and propose a novel method for community detection in complex network, which owns several outstanding properties, such as efficiency, robustness, broad applicability and semantic. The method is based on partitioning vertex and degree entropy, which are both proposed in this paper. Partitioning vertex is a novel efficient representation for communities and degree entropy is a new measure for the results of community detection. We apply our method to several large-scale data-sets which are up to millions of edges, and the experimental results show that our method has good performance and can find the community structure hidden in complex networks.
机译:近年来,复杂网络中的社区检测已成为数学,物理和生物学等各个研究领域的热门研究课题。识别复杂网络中的社区可以帮助我们更清楚,更有效地理解和利用网络。在本文中,我们研究了复杂网络的拓扑结构,并提出了一种在复杂网络中进行社区检测的新方法,该方法具有效率,鲁棒性,广泛的适用性和语义等几个突出的特性。该方法基于本文提出的分区顶点和度熵。分割顶点是对社区的一种新颖有效的表示,而程度熵是对社区检测结果的一种新度量。我们将该方法应用于数以百万计的边缘的大型数据集,实验结果表明,该方法具有良好的性能,可以发现复杂网络中隐藏的社区结构。

著录项

  • 来源
  • 会议地点 Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN);Shenzhen(CN)
  • 作者

    Wang Yiwen; Yao Min;

  • 作者单位

    College of Computer Science, Zhejiang University, Hangzhou 310027, China;

    College of Computer Science, Zhejiang University, Hangzhou 310027, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP311.13;TP311.13;
  • 关键词

    community detection; complex network; adjacency matrix;

    机译:社区检测;复杂的网络;邻接矩阵;

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